{"id":72887,"date":"2021-07-09T07:36:21","date_gmt":"2021-07-09T11:36:21","guid":{"rendered":"http:\/\/stateofthenation.co\/?p=72887"},"modified":"2021-07-09T07:36:21","modified_gmt":"2021-07-09T11:36:21","slug":"scientific-research-paper-proves-the-toxicity-of-graphene-family-nanoparticles","status":"publish","type":"post","link":"http:\/\/stateofthenation.co\/?p=72887","title":{"rendered":"Scientific Research Paper Proves the Toxicity of Graphene-family Nanoparticles"},"content":{"rendered":"<p><!--more--><\/p>\n<div class=\"c-article-header\">\n<h1 class=\"c-article-title\" data-test=\"article-title\" data-article-title=\"\">Toxicity of graphene-family nanoparticles: a general review of the origins and mechanisms<\/h1>\n<ul class=\"c-article-author-list js-etal-collapsed js-no-scroll\" data-etal=\"25\" data-etal-small=\"3\" data-test=\"authors-list\" data-component-authors-activator=\"authors-list\">\n<li class=\"c-article-author-list__item\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Lingling-Ou\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Lingling-Ou\">Lingling Ou<\/a>,<\/li>\n<li class=\"c-article-author-list__item\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Bin-Song\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Bin-Song\">Bin Song<\/a>,<\/li>\n<li class=\"c-article-author-list__item js-smaller-author-etal\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Huimin-Liang\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Huimin-Liang\">Huimin Liang<\/a>,<\/li>\n<li class=\"c-article-author-list__item js-smaller-author-etal\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Jia-Liu\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Jia-Liu\">Jia Liu<\/a>,<\/li>\n<li class=\"c-article-author-list__item js-smaller-author-etal\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Xiaoli-Feng\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Xiaoli-Feng\">Xiaoli Feng<\/a>,<\/li>\n<li class=\"c-article-author-list__item js-smaller-author-etal\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Bin-Deng\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Bin-Deng\">Bin Deng<\/a>,<\/li>\n<li class=\"c-article-author-list__item js-smaller-author-etal\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Ting-Sun\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Ting-Sun\">Ting Sun<\/a> &amp;<\/li>\n<li class=\"c-article-author-list__item\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#auth-Longquan-Shao\" data-test=\"author-name\" data-track=\"click\" data-track-action=\"open author\" data-track-label=\"link\" data-author-popup=\"auth-Longquan-Shao\" data-corresp-id=\"c1\">Longquan Shao<\/a><\/li>\n<\/ul>\n<p class=\"c-article-info-details\" data-container-section=\"info\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/\" data-test=\"journal-link\"><i data-test=\"journal-title\">Particle and Fibre Toxicology<\/i><\/a> <b data-test=\"journal-volume\"><span class=\"u-visually-hidden\">volume<\/span>\u00a013<\/b>, Article\u00a0number:\u00a0<span data-test=\"article-number\">57<\/span> (<span data-test=\"article-publication-year\">2016<\/span>) <a class=\"c-article-info-details__cite-as u-hide-print\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#citeas\" data-track=\"click\" data-track-action=\"cite this article\" data-track-label=\"link\">Cite this article<\/a><\/p>\n<div class=\"c-article-metrics-bar__wrapper u-clear-both\">\n<ul class=\"c-article-metrics-bar u-list-reset\">\n<li class=\" c-article-metrics-bar__item\">\n<p class=\"c-article-metrics-bar__count\">34k <span class=\"c-article-metrics-bar__label\">Accesses<\/span><\/p>\n<\/li>\n<li class=\"c-article-metrics-bar__item\">\n<p class=\"c-article-metrics-bar__count\">256 <span class=\"c-article-metrics-bar__label\">Citations<\/span><\/p>\n<\/li>\n<li class=\"c-article-metrics-bar__item\">\n<p class=\"c-article-metrics-bar__count\">1122 <span class=\"c-article-metrics-bar__label\">Altmetric<\/span><\/p>\n<\/li>\n<li class=\"c-article-metrics-bar__item\">\n<p class=\"c-article-metrics-bar__details\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/metrics\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"view metrics\" data-track-label=\"link\">Metrics <span class=\"u-visually-hidden\">details<\/span><\/a><\/p>\n<\/li>\n<\/ul>\n<\/div>\n<\/div>\n<section lang=\"en\" aria-labelledby=\"Abs1\" data-title=\"Abstract\">\n<div id=\"Abs1-section\" class=\"c-article-section\">\n<h2 id=\"Abs1\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Abstract<\/h2>\n<div id=\"Abs1-content\" class=\"c-article-section__content\">\n<p>Due to their unique physicochemical properties, graphene-family nanomaterials (GFNs) are widely used in many fields, especially in biomedical applications. Currently, many studies have investigated the biocompatibility and toxicity of GFNs in vivo and in intro. Generally, GFNs may exert different degrees of toxicity in animals or cell models by following with different administration routes and penetrating through physiological barriers, subsequently being distributed in tissues or located in cells, eventually being excreted out of the bodies. This review collects studies on the toxic effects of GFNs in several organs and cell models. We also point out that various factors determine the toxicity of GFNs including the lateral size, surface structure, functionalization, charge, impurities, aggregations, and corona effect ect. In addition, several typical mechanisms underlying GFN toxicity have been revealed, for instance, physical destruction, oxidative stress, DNA damage, inflammatory response, apoptosis, autophagy, and necrosis. In these mechanisms, (toll-like receptors-) TLR-, transforming growth factor \u03b2- (TGF-\u03b2-) and tumor necrosis factor-alpha (TNF-\u03b1) dependent-pathways are involved in the signalling pathway network, and oxidative stress plays a crucial role in these pathways. In this review, we summarize the available information on regulating factors and the mechanisms of GFNs toxicity, and propose some challenges and suggestions for further investigations of GFNs, with the aim of completing the toxicology mechanisms, and providing suggestions to improve the biological safety of GFNs and facilitate their wide application.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Background\">\n<div id=\"Sec1-section\" class=\"c-article-section\">\n<h2 id=\"Sec1\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Background<\/h2>\n<div id=\"Sec1-content\" class=\"c-article-section__content\">\n<p>Graphene, which is isolated from crystalline graphite, is a flat monolayer composed of single-atom-thick, two-dimensional sheets of a hexagonally arranged honeycomb lattice [<a id=\"ref-link-section-d69921e882\" title=\"Novoselov KS, Geim AK, Morozov SV, Jiang D, Zhang Y, Dubonos SV, et al. Electric field effect in atomically thin carbon films. Science. 2004;306(5696):666\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR1\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 1\">1<\/a>]. Because of its unique structural, specific surface area and mechanical characteristics, the functions and applications of graphene have gained considerable attention since the discovery of the material in 2004 [<a id=\"ref-link-section-d69921e885\" title=\"Sanchez VC, Jachak A, Hurt RH, Kane AB. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. Chem Res Toxicol. 2012;25(1):15\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR2\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\">2<\/a>, <a id=\"ref-link-section-d69921e888\" title=\"Yang XY, Wang YS, Huang X, Ma YF, Huang Y, Yang RC, et al. Multi-functionalized graphene oxide based anticancer drug-carrier with dual-targeting function and pH-sensitivity. J Mat Chem. 2011;21(10):3448\u201354.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR3\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 3\">3<\/a>]. Graphene and its derivatives include monolayer graphene, few-layer graphene (FLG), graphene oxide (GO), reduced graphene oxide (rGO), graphene nanosheets (GNS), and graphene nanoribbons, etc. [<a id=\"ref-link-section-d69921e891\" title=\"Park S, An J, Jung I, Piner RD, An SJ, Li X, et al. Colloidal suspensions of highly reduced graphene oxide in a wide variety of organic solvents. Nano Lett. 2009;9(4):1593\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR4\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 4\">4<\/a>\u2013<a id=\"ref-link-section-d69921e894\" title=\"Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>]. GO is one of the most vital chemical graphene derivatives of the graphene-family nanomaterials (GFNs), which attracts increasing attention for its potential biomedical applications. Graphene-based materials usually have sizes ranging from several to hundreds of nanometer and are 1-10\u00a0nm thick [<a id=\"ref-link-section-d69921e898\" title=\"Shen H, Zhang L, Liu M, Zhang Z. Biomedical applications of graphene. Theranostics. 2012;2(3):283\u201394.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR8\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 8\">8<\/a>, <a id=\"ref-link-section-d69921e901\" title=\"Han U, Seo Y, Hong J. Effect of pH on the structure and drug release profiles of layer-by-layer assembled films containing polyelectrolyte, micelles, and graphene oxide. Sci Rep. 2016;6(2045\u20132322 (Electronic)):24158.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR9\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 9\">9<\/a>], which is also the definition of \u2018nanoparticles\u2019 or \u2018nanomaterials\u2019. Due to their exceptional physical and chemical properties, graphene materials have been widely used in various fields, including energy storage; nanoelectronic devices; batteries [<a id=\"ref-link-section-d69921e904\" title=\"Wang H, Liang Y, Mirfakhrai T, Chen Z, Casalongue HS, Dai H. Advanced asymmetrical supercapacitors based on graphene hybrid materials. Nano Res. 2011;4(8):729\u201336.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR10\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\">10<\/a>\u2013<a id=\"ref-link-section-d69921e907\" title=\"Wang D, Zhu L, Chen JF, Dai L. Mn3O4-graphene hybrid as a high-capacity anode material for lithium ion batteries. J Am Chem Soc. 2015;132(1520\u20135126 (Electronic)):13978\u201380.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR12\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\">12<\/a>]; and biomedical applications, such as antibacterials [<a id=\"ref-link-section-d69921e910\" title=\"Gurunathan S, Han JW, Dayem AA, Eppakayala V, Kim JH. Oxidative stress-mediated antibacterial activity of graphene oxide and reduced graphene oxide in Pseudomonas aeruginosa. Int J Nanomed. 2012;7(1178\u20132013 (Electronic)):e14.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR13\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 13\">13<\/a>, <a id=\"ref-link-section-d69921e913\" title=\"Zhan S, Zhu D, Ma S, Yu W, Jia Y, Li Y, et al. Highly efficient removal of pathogenic bacteria with magnetic graphene composite. ACS Appl Mater Interf. 2015;7(1944\u20138252 (Electronic)):4290\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR14\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\">14<\/a>], biosensors [<a id=\"ref-link-section-d69921e917\" title=\"Yang HW, Hua MY, Chen SL, Tsai RY. Reusable sensor based on high magnetization carboxyl-modified graphene oxide with intrinsic hydrogen peroxide catalytic activity for hydrogen peroxide and glucose detection. Biosens Bioelectron. 2013;41:172\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR15\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\">15<\/a>\u2013<a id=\"ref-link-section-d69921e920\" title=\"Gao L, Lian C, Zhou Y, Yan L, Li Q, Zhang C, et al. Graphene oxide-DNA based sensors. Biosens Bioelectron. 2014;60(1873\u20134235 (Electronic)):22\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR18\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 18\">18<\/a>], cell imaging [<a id=\"ref-link-section-d69921e923\" title=\"Chen ML, Liu JW, Hu B, Chen ML, Wang JH. Conjugation of quantum dots with graphene for fluorescence imaging of live cells. Analyst. 2011;136(20):4277\u201383.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR19\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 19\">19<\/a>, <a id=\"ref-link-section-d69921e926\" title=\"Wang Y, Wang H, Liu D, Song S, Wang X, Zhang H. Graphene oxide covalently grafted upconversion nanoparticles for combined NIR mediated imaging and photothermal\/photodynamic cancer therapy. Biomaterials. 2013;34(1878\u20135905 (Electronic)):7715\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR20\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 20\">20<\/a>], drug delivery [<a id=\"ref-link-section-d69921e929\" title=\"Shen H, Zhang L, Liu M, Zhang Z. Biomedical applications of graphene. Theranostics. 2012;2(3):283\u201394.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR8\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 8\">8<\/a>, <a id=\"ref-link-section-d69921e932\" title=\"Pan Y, Sahoo NG, Li L. The application of graphene oxide in drug delivery. Expert Opin Drug Deliv. 2012;9(11):1365\u201376.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR21\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 21\">21<\/a>, <a id=\"ref-link-section-d69921e936\" title=\"Huiyun W, Chunyan D, Haiqing D, Aijun S, Wenjuan X, Xiaojun C, et al. Engineered redox-responsive PEG detachment mechanism in PEGylated nano-graphene oxide for intracellular drug delivery. Small. 2012;8(5):760\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR22\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 22\">22<\/a>], and tissue engineering [<a id=\"ref-link-section-d69921e939\" title=\"Yang X, Qiu L, Cheng C, Wu Y, Ma ZF, Li D. Ordered gelation of chemically converted graphene for next-generation electroconductive hydrogel films. Angewandte Chem Int Ed Engl. 2011;50(32):7325\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR23\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 23\">23<\/a>\u2013<a id=\"ref-link-section-d69921e942\" title=\"Chaenyung C, Ryon SS, Xiguang G, Nasim A, Dokmeci MR, Xiaowu Shirley T, et al. Controlling mechanical properties of cell-laden hydrogels by covalent incorporation of graphene oxide. Small. 2014;10(3):514\u201323.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR25\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 25\">25<\/a>].<\/p>\n<p>Along with the application and production of GFNs increasing, the risk of unintentional occupational or environmental exposure to GFNs is increasing [<a id=\"ref-link-section-d69921e948\" title=\"Arvidsson R, Molander S, Sand\u00e9n BA. Review of potential environmental and health risks of the nanomaterial graphene. Hum Ecol Risk Assess. 2013;19(4):873\u201387.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR26\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\">26<\/a>]. And recently, there are some investigation on GFNs exposure in occupational settings and published data showed that the occupational exposure of GFNs had potential toxicity to the workers and researchers [<a id=\"ref-link-section-d69921e951\" title=\"Lee JH, Han JH, Kim JH, Kim B, Bello D, Kim JK, et al. Exposure monitoring of graphene nanoplatelets manufacturing workplaces. Inhal Toxicol. 2016;28(6):281\u201391.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR27\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 27\">27<\/a>\u2013<a id=\"ref-link-section-d69921e954\" title=\"Su WC, Ku BK, Kulkarni P, Cheng YS. Deposition of graphene nanomaterial aerosols in human upper airways. J Occup Environ Hyg. 2015;13(1):1\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR29\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\">29<\/a>]. GFNs can be delivered into bodies by intratracheal instillation [<a id=\"ref-link-section-d69921e957\" title=\"Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a>], oral administration [<a id=\"ref-link-section-d69921e960\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>], intravenous injection [<a id=\"ref-link-section-d69921e964\" title=\"Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR32\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\">32<\/a>], intraperitoneal injection [<a id=\"ref-link-section-d69921e967\" title=\"Kurantowicz N, Strojny B, Sawosz E, Jaworski S, Kutwin M, Grodzik M, et al. Biodistribution of a high dose of diamond, graphite, and graphene oxide nanoparticles after multiple intraperitoneal injections in rats. Nanoscale Res Lett. 2015;10(1):398.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR33\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\">33<\/a>] and subcutaneous injection [<a id=\"ref-link-section-d69921e970\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>]. GFNs can induce acute and chronic injuries in tissues by penetrating through the blood-air barrier, blood-testis barrier, blood-brain barrier, and blood-placenta barrier etc. and accumulating in the lung, liver, and spleen etc. For example, some graphene nanomaterials aerosols can be inhaled and substantial deposition in the respiratory tract, and they can easily penetrate through the tracheobronchial airways and then transit down to the lower lung airways, resulting in the subsequent formation of granulomas, lung fibrosis and adverse health effects to exposed persons [<a id=\"ref-link-section-d69921e973\" title=\"Sanchez VC, Jachak A, Hurt RH, Kane AB. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. Chem Res Toxicol. 2012;25(1):15\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR2\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\">2<\/a>, <a id=\"ref-link-section-d69921e976\" title=\"Su WC, Ku BK, Kulkarni P, Cheng YS. Deposition of graphene nanomaterial aerosols in human upper airways. J Occup Environ Hyg. 2015;13(1):1\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR29\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\">29<\/a>]. Several reviews have outlined the unique properties [<a id=\"ref-link-section-d69921e979\" title=\"Nezakati T, Cousins BG, Seifalian AM. Toxicology of chemically modified graphene-based materials for medical application. Arch Toxicol. 2014;88(11):1987\u20132012.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR35\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 35\">35<\/a>, <a id=\"ref-link-section-d69921e983\" title=\"Chng ELK, Pumera M. Toxicity of graphene related materials and transition metal dichalcogenides. Rsc Advances. 2015;5(4):3074\u201380.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR36\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 36\">36<\/a>] and summarized the latest potential biological applications of GFNs for drug delivery, gene delivery, biosensors, tissue engineering, and neurosurgery [<a id=\"ref-link-section-d69921e986\" title=\"Zheng XT, Ananthanarayanan A, Luo KQ, Chen P. Glowing graphene quantum dots and carbon dots: properties, syntheses, and biological applications. Small. 2015;11(1613\u20136829 (Electronic)):1620\u201336.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR37\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 37\">37<\/a>\u2013<a id=\"ref-link-section-d69921e989\" title=\"Wu SY, An SS, Hulme J. Current applications of graphene oxide in nanomedicine. Int J Nanomed. 2015;10(Spec Iss):9\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR39\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 39\">39<\/a>]; assessed the biocompatibility of GFNs in cells (bacterial, mammalian and plant) [<a id=\"ref-link-section-d69921e992\" title=\"Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>, <a id=\"ref-link-section-d69921e995\" title=\"Tonelli FMP, Goulart VAM, Gomes KN, Ladeira MS, Santos AK, Lorencon E, et al. Graphene-based nanomaterials: biological and medical applications and toxicity. Nanomedicine. 2015;10(15):2423\u201350.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR40\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 40\">40<\/a>, <a id=\"ref-link-section-d69921e998\" title=\"Zhou R, Gao H. Cytotoxicity of graphene: recent advances and future perspective. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2014;6(5):452\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR41\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 41\">41<\/a>] and animals (mice and zebrafish) [<a id=\"ref-link-section-d69921e1002\" title=\"Ema M, Hougaard KS, Kishimoto A, Honda K. Reproductive and developmental toxicity of carbon-based nanomaterials: A literature review. Nanotoxicology. 2015;10:391\u2013412.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR42\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 42\">42<\/a>]; collected information on the influence of GFNs in the soil and water environments [<a id=\"ref-link-section-d69921e1005\" title=\"Jastrzebska AM, Olszyna AR. The ecotoxicity of graphene family materials: current status, knowledge gaps and future needs. J Nanopart Res. 2015;17(1):1\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR43\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 43\">43<\/a>]. Although these reviews discussed the related safety profiles and nanotoxicology of GFNs, the specific conclusions and detailed mechanisms of toxicity were insufficient, and the mechanisms of toxicity were not summarized completely. The toxicological mechanisms of GFNs demonstrated in recent studies mainly contain inflammatory response, DNA damage, apoptosis, autophagy and necrosis etc., and those mechanisms can be collected to further explore the complex signalling pathways network regulating the toxicity of GFNs. It needs to point out that there are several factors which largely influence the toxicity of GFNs, such as the concentration, lateral dimension, surface structure and functionalization etc. Herein, this review presents a comprehensive summary of the available information on the mechanisms and regulating factors of GFNs toxicity in vitro and in vivo via different experimental methods, with the goals of providing suggestions for further studies of GFNs and completing the toxicology mechanisms to improve the biological safety of GFNs and facilitate their wide application.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Toxicity of GFNs (in vivo and in vitro)\">\n<div id=\"Sec2-section\" class=\"c-article-section\">\n<h2 id=\"Sec2\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Toxicity of GFNs (in vivo and in vitro)<\/h2>\n<div id=\"Sec2-content\" class=\"c-article-section__content\">\n<p>GFNs penetrate through the physiological barriers or cellular structures by different exposure ways or administration routes and entry the body or cells, eventually resulting in toxicity in vivo and in vitro. The varying administration routes and entry paths, different tissue distribution and excretion, even the various cell uptake patterns and locations, may determine the degree of the toxicity of GFNs [<a id=\"ref-link-section-d69921e1016\" title=\"Xu S, Zhang Z, Chu M. Long-term toxicity of reduced graphene oxide nanosheets: Effects on female mouse reproductive ability and offspring development. Biomaterials. 2015;54:188\u2013200.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR44\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 44\">44<\/a>\u2013<a id=\"ref-link-section-d69921e1019\" title=\"Wu W, Yan L, Wu Q, Li Y, Li Q, Chen S, et al. Evaluation of the toxicity of graphene oxide exposure to the eye. Nanotoxicology. 2016;10(9):1329\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR46\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 46\">46<\/a>]. So to make them clear may be helpful to better understand the laws of the occurrence and development of GFNs toxicity.<\/p>\n<h3 id=\"Sec3\" class=\"c-article__sub-heading\">Administration route<\/h3>\n<p>The common administration routes in animal models include airway exposure (intranasal insufflation, intratracheal instillation, and inhalation), oral administration, intravenous injection, intraperitoneal injection and subcutaneous injection. The major exposure route for GFNs in the working environment is airway exposure, thus inhalation and intratracheal instillation are used mostly in mice to simulate human exposure to GFNs. Though the inhalation method provides the most realistic simulation to real life exposure, instillation is more effective and time-saving method, and GFNs was found that causing longer inflammation period using instillation (intratracheal instillation, intrapleural installation and pharyngeal aspiration) than inhalation [<a id=\"ref-link-section-d69921e1029\" title=\"Schinwald A, Murphy FA, Jones A, Macnee W, Donaldson K. Graphene-based nanoplatelets: a new risk to the respiratory system as a consequence of their unusual aerodynamic properties. ACS Nano. 2012;6(1):736\u201346.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR24\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\">24<\/a>, <a id=\"ref-link-section-d69921e1032\" title=\"Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a>, <a id=\"ref-link-section-d69921e1035\" title=\"Lee K, Jeong Y, Bae J, Seok H, Yang Y, Roh S, et al. The role of surface functionalization on the pulmonary inflammogenicity and translocation into mediastinal lymph nodes of graphene nanoplatelets in rats. Arch Toxicol.2016:1\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR47\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 47\">47<\/a>, <a id=\"ref-link-section-d69921e1038\" title=\"Schinwald A, Murphy F, Askounis A, Koutsos V, Sefiane K, Donaldson K, et al. Minimal oxidation and inflammogenicity of pristine graphene with residence in the lung. Nanotoxicology. 2013;8(8):824\u201332.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR48\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 48\">48<\/a>]. GFNs were investigated to deposit in the lungs and accumulate to a high level, which retained for more than 3\u00a0months in the lungs with slow clearing after intratracheal instillation [<a id=\"ref-link-section-d69921e1041\" title=\"Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR49\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 49\">49<\/a>]. Intravenous injection is also widely used to assess the toxicity of graphene nanomaterials, and graphene circulates through the body of mice in 30\u00a0min, accumulating at a working concentration in the liver and bladder [<a id=\"ref-link-section-d69921e1045\" title=\"Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR32\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\">32<\/a>, <a id=\"ref-link-section-d69921e1048\" title=\"Singh SK, Singh MK, Nayak MK, Kumari S, Shrivastava S, Gracio JJ, et al. Thrombus inducing property of atomically thin graphene oxide sheets. ACS Nano. 2011;5(6):4987\u201396.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR50\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 50\">50<\/a>\u2013<a id=\"ref-link-section-d69921e1051\" title=\"Yang K, Wan J, Zhang S, Zhang Y, Lee ST, Liu Z. In vivo pharmacokinetics, long-term biodistribution, and toxicology of PEGylated graphene in mice. ACS Nano. 2011;5(1):516\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR52\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 52\">52<\/a>]. However, GO derivatives had rather finite intestinal adsorption and were rapidly excreted in adult mice via oral administration [<a id=\"ref-link-section-d69921e1054\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>, <a id=\"ref-link-section-d69921e1057\" title=\"Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR53\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 53\">53<\/a>]. Nano-sized GO (350\u00a0nm) caused less mononuclear cells to infiltrate subcutaneous adipose tissue after subcutaneous injection in the neck region compared to micron-sized GO (2\u00a0\u03bcm) [<a id=\"ref-link-section-d69921e1060\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>]. GO agglomerated near the injection site after intraperitoneal injection, and numerous smaller aggregates settled in the proximity of the liver and spleen serosa [<a id=\"ref-link-section-d69921e1064\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>, <a id=\"ref-link-section-d69921e1067\" title=\"Kurantowicz N, Strojny B, Sawosz E, Jaworski S, Kutwin M, Grodzik M, et al. Biodistribution of a high dose of diamond, graphite, and graphene oxide nanoparticles after multiple intraperitoneal injections in rats. Nanoscale Res Lett. 2015;10(1):398.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR33\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\">33<\/a>]. Experiments on skin contact with or skin permeation of GFNs were not found in the papers reviewed here, and there is insufficient evidence available to conclude that graphene can penetrate intact skin or skin lesions. The route of nasal drops, which has been widely used to test the neurotoxicity or brain injury potential of other nanomaterials, was not mentioned in the papers reviewed here.<\/p>\n<h3 id=\"Sec4\" class=\"c-article__sub-heading\">GFNs entry paths<\/h3>\n<p>GFNs reach various locations through blood circulation or biological barriers after entering the body, which results in varying degrees of retention in different organs. Due to their nanosize, GFNs can reach deeper organs by passing through the normal physiological barriers, such as the blood-air barrier, blood-testis barrier, blood-brain barrier and blood-placental barrier.<\/p>\n<h4 id=\"Sec5\" class=\"c-article__sub-heading c-article__sub-heading--small\">Blood-air barrier<\/h4>\n<p>The lungs are a potential entrance for graphene nanoparticles into the human body through airway. The inhaled GO nanosheets can destroy the ultrastructure and biophysical properties of pulmonary surfactant (PS) film, which is the first line of host defense, and emerge their potential toxicity [<a id=\"ref-link-section-d69921e1085\" title=\"Hu Q, Jiao B, Shi X, Valle RP, Zuo YY, Hu G. Effects of graphene oxide nanosheets on the ultrastructure and biophysical properties of the pulmonary surfactant film. Nanoscale. 2015;7(43):18025\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR54\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 54\">54<\/a>]. The agglomerated or dispersed particles deposit on the inner alveolar surface within the alveoli and then be engulfed by alveolar macrophages (AMs) [<a id=\"ref-link-section-d69921e1088\" title=\"Gosens I, Post JA, de la Fonteyne LJ, Jansen EH, Geus JW, Cassee FR, et al. Impact of agglomeration state of nano- and submicron sized gold particles on pulmonary inflammation. Part Fibre Toxicol. 2010;7(1743\u20138977 (Electronic)):1.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR55\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 55\">55<\/a>]. Clearance in the lungs is facilitated by the mucociliary escalator, AMs, or epithelial layer [<a id=\"ref-link-section-d69921e1091\" title=\"Geiser M, Kreyling WG. Deposition and biokinetics of inhaled nanoparticles. Part Fibre Toxicol. 2010;7:2.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR56\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 56\">56<\/a>\u2013<a id=\"ref-link-section-d69921e1094\" title=\"Morfeld P, Treumann S, Ma-Hock L, Bruch J, Landsiedel R. Deposition behavior of inhaled nanostructured TiO2 in rats: fractions of particle diameter below 100 nm (nanoscale) and the slicing bias of transmission electron microscopy. Inhal Toxicol. 2012;24(1091\u20137691 (Electronic)):939\u201351.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR58\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 58\">58<\/a>]. However, some small, inhaled nanoparticles infiltrate the intact lung epithelial barrier and can then transiently enter the alveolar epithelium or the interstitium [<a id=\"ref-link-section-d69921e1097\" title=\"Wiemann M, Vennemann A, Sauer UG, Wiench K, Ma-Hock L, Landsiedel R. An in vitro alveolar macrophage assay for predicting the short-term inhalation toxicity of nanomaterials. J Nanobiotechnol. 2016;14(1477\u20133155 (Electronic)):1.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR59\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 59\">59<\/a>, <a id=\"ref-link-section-d69921e1101\" title=\"Kreyling WG, Semmler-Behnke M, Takenaka S, M\u00f6ller W. Differences in the biokinetics of inhaled nano- versus micrometer-sized particles. Accounts Chem Res. 2012;46(1520\u20134898 (Electronic)):714\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR60\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 60\">60<\/a>]. Intratracheally instilled graphene can redistribute to the liver and spleen by passing through the air-blood barrier [<a id=\"ref-link-section-d69921e1104\" title=\"Liang M, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1):1\u201312.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR61\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 61\">61<\/a>]. The study of blood-air barrier may draw an intensive attention, since the researchers and workers occupational exposure of GFNs usually through inhalation. To make clear how the blood-air barrier plays a role in the toxicity of GFNs may become a research hot topic.<\/p>\n<h4 id=\"Sec6\" class=\"c-article__sub-heading c-article__sub-heading--small\">Blood-brain barrier<\/h4>\n<p>The intricate arrangement of the blood-brain barrier, consisting of numbers of membrane receptors and highly selective carriers, only exerts subtle influence on blood circulation and the brain microenvironment compared to the peripheral vascular endothelium [<a id=\"ref-link-section-d69921e1115\" title=\"Abbott NJ, Patabendige AA, Dolman DE, Yusof SR, Begley DJ. Structure and function of the blood\u2013brain barrier. Neurobiol Dis. 2010;37(1):13\u201325.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR62\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 62\">62<\/a>]. The research on the mechanism of blood-brain barrier had made some progress involved in diseases and nanotoxicity. Matrix-assisted laser desorption\/ionization (MALDI) mass spectrometry imaging (MSI) revealed that rGO, with an average diameter of 342\u2009\u00b1\u200923.5\u00a0nm, permeated through the paracellular pathway into the inter-endothelial cleft in a time-dependent manner by decreasing the blood-brain barrier paracellular tightness [<a id=\"ref-link-section-d69921e1118\" title=\"Mendonca MC, Soares ES, de Jesus MB, Ceragioli HJ, Ferreira MS, Catharino RR, et al. Reduced graphene oxide induces transient blood\u2013brain barrier opening: an in vivo study. J Nanobiotechnol. 2015;13:78.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR63\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 63\">63<\/a>]. In addition, graphene quantum dots (GQDs), with a small size of less than 100\u00a0nm, can cross through the blood-brain barrier [<a id=\"ref-link-section-d69921e1121\" title=\"Liu Y, Xu LP, Dai W, Dong H, Wen Y, Zhang X. Graphene quantum dots for the inhibition of beta amyloid aggregation. Nanoscale. 2015;7(45):19060\u20135.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR64\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 64\">64<\/a>]. Studies on how graphene materials pass through the blood-brain barrier and cause neurotoxicity are very rare, and more data are needed to draw a conclusion.<\/p>\n<h4 id=\"Sec7\" class=\"c-article__sub-heading c-article__sub-heading--small\">Blood-testis barrier<\/h4>\n<p>The blood-testis and blood-epididymis barriers are well known for being some of the tightest blood-tissue barriers in the mammalian body [<a id=\"ref-link-section-d69921e1132\" title=\"Mital P, Hinton BT, Dufour JM. The blood-testis and blood-epididymis barriers are more than just their tight junctions. Biol Reprod. 2011;84(5):851\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR65\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 65\">65<\/a>]. GO particles with diameters of 54.9\u2009\u00b1\u200923.1\u00a0nm had difficulty penetrating the blood-testis and blood-epididymis barriers after intra-abdominal injection, and the sperm quality of the mice was not obviously affected even at 300\u00a0mg\/kg dosage [<a id=\"ref-link-section-d69921e1135\" title=\"Liang S, Xu S, Zhang D, He J, Chu M. Reproductive toxicity of nanoscale graphene oxide in male mice. Nanotoxicology. 2015;9(1):92\u2013105.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR66\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 66\">66<\/a>].<\/p>\n<h4 id=\"Sec8\" class=\"c-article__sub-heading c-article__sub-heading--small\">Blood-placenta barrier<\/h4>\n<p>The placental barrier is indispensable in maintaining pregnancy, as it mediates the exchange of nutrients and metabolic waste products, exerts vital metabolic functions and secretes hormones [<a id=\"ref-link-section-d69921e1147\" title=\"Buerkithurnherr T, Von MU, Wick P. Knocking at the door of the unborn child: engineered nanoparticles at the human placental barrier. Swiss Med Wkly. 2012;142:w13559.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR67\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 67\">67<\/a>]. A recent review suggested that the placenta does not provide a tight barrier against the transfer of nanoparticles to foetuses, specifically against the distribution of carbonaceous nanoparticles to and in the foetus [<a id=\"ref-link-section-d69921e1150\" title=\"Ema M, Hougaard KS, Kishimoto A, Honda K. Reproductive and developmental toxicity of carbon-based nanomaterials: A literature review. Nanotoxicology. 2015;10:391\u2013412.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR42\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 42\">42<\/a>]. It was suggested that rGO and gold particles (diameter of 13\u00a0nm) are barely present or are absent in the placenta and foetus in late gestation after intravenous injection [<a id=\"ref-link-section-d69921e1153\" title=\"Xu S, Zhang Z, Chu M. Long-term toxicity of reduced graphene oxide nanosheets: Effects on female mouse reproductive ability and offspring development. Biomaterials. 2015;54:188\u2013200.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR44\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 44\">44<\/a>, <a id=\"ref-link-section-d69921e1156\" title=\"Yang H, Sun C, Fan Z, Tian X, Yan L, Du L, et al. Effects of gestational age and surface modification on materno-fetal transfer of nanoparticles in murine pregnancy. Sci Rep. 2012;2(46):847.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR68\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 68\">68<\/a>]. However, other reports showed that transplacental transfer does occur in late gestational stages [<a id=\"ref-link-section-d69921e1159\" title=\"Huang X, Zhang F, Sun X, Choi KY, Niu G, Zhang G, et al. The genotype-dependent influence of functionalized multiwalled carbon nanotubes on fetal development. Biomaterials. 2014;35(2):856\u201365.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR69\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 69\">69<\/a>, <a id=\"ref-link-section-d69921e1163\" title=\"Qi W, Bi J, Zhang X, Wang J, Wang J, Liu P, et al. Damaging effects of multi-walled carbon nanotubes on pregnant mice with different pregnancy times. Sci Rep. 2014;4(3):doi: 10.1038\/srep04352.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR70\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 70\">70<\/a>]. Much attention had been paid to the developmental toxicity of nanomaterials, and reports showed that many nanoparticles did cross the placental barrier and strongly influenced the development of embryos [<a id=\"ref-link-section-d69921e1166\" title=\"Du J, Wang S, You H, Jiang R, Zhuang C, Zhang X. Developmental toxicity and DNA damage to zebrafish induced by perfluorooctane sulfonate in the presence of ZnO nanoparticles. Environ Toxicol. 2014;31(1522\u20137278 (Electronic)):360\u201371.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR71\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 71\">71<\/a>\u2013<a id=\"ref-link-section-d69921e1169\" title=\"Ema M, Gamo M, Honda K. Developmental toxicity of engineered nanomaterials in rodents. Toxicol Appl Pharmacol. 2015;299(1096\u20130333 (Electronic)):47\u201352.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR75\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 75\">75<\/a>]. But studies of the exposure to graphene materials through the placenta barrier are deficient, and how these particles transfer to embryos should be evaluated in detail in the future.<\/p>\n<p>These four barriers were the most frequently mentioned barriers in the literature, and other barriers have not been evaluated in recent studies, such as skin barriers, which have not been mentioned in any of the hundreds of GFNs toxicity studies searched. Moreover, the mechanism by which GFNs pass through these barriers is not well understood, and more systematic investigations are urgently needed.<\/p>\n<h3 id=\"Sec9\" class=\"c-article__sub-heading\">Distribution and excretion of GFNs in tissue<\/h3>\n<p>The absorption, distribution, and excretion of graphene nanoparticles may be affected by various factors including the administration routes, physicochemical properties, particle agglomeration and surface coating of GFNs.<\/p>\n<p>The different administration routes influence the distribution of GFNs, for example, intratracheally instilled FLG passing through the air-blood barrier mainly accumulated and was retained in the lungs, with 47\u00a0% remaining after 4\u00a0weeks [<a id=\"ref-link-section-d69921e1187\" title=\"Liang M, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1):1\u201312.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR61\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 61\">61<\/a>]. Intravenously administered GO entered the body through blood circulation and was highly retained in the lung, liver, spleen and bone marrow, and inflammatory cell infiltration, granuloma formation and pulmonary edema were observed in the lungs of mice after intravenous injection of 10\u00a0mg\u00a0kg\/body weight GO [<a id=\"ref-link-section-d69921e1190\" title=\"Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR49\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 49\">49<\/a>]. Similarly, high accumulation of PEGylated GO derivatives was observed in the reticuloendothelial (RES) system including liver and spleen after intraperitoneal injection. In contrast, GO-PEG and FLG did not show detectable gastrointestinal tract absorption or tissue uptake via oral administration [<a id=\"ref-link-section-d69921e1193\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>].<\/p>\n<p>The different properties of GFNs, such as their size, dose and functional groups, always lead to inconsistent results in the distribution profiles of graphene. For instance, Zhang et al. found that GO was mainly entrapped in mouse lungs [<a id=\"ref-link-section-d69921e1199\" title=\"Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR49\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 49\">49<\/a>]; however, Li et al. observed that GO accumulated in mouse liver [<a id=\"ref-link-section-d69921e1202\" title=\"Li Z, Geng Y, Zhang X, Qi W, Fan Q, Li Y, et al. Biodistribution of co-exposure to multi-walled carbon nanotubes and graphene oxide nanoplatelets radiotracers. J Nanopart Res. 2011;13(7):2939\u201347.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR76\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 76\">76<\/a>]. Notably, small GO sheets, with diameters of 10\u201330\u00a0nm, were mainly distributed in the liver and spleen, whereas larger GO sheets (10\u2013800\u00a0nm) mainly accumulated in the lungs [<a id=\"ref-link-section-d69921e1205\" title=\"Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR49\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 49\">49<\/a>, <a id=\"ref-link-section-d69921e1208\" title=\"Yang K, Wan J, Zhang S, Zhang Y, Lee ST, Liu Z. In vivo pharmacokinetics, long-term biodistribution, and toxicology of PEGylated graphene in mice. ACS Nano. 2011;5(1):516\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR52\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 52\">52<\/a>, <a id=\"ref-link-section-d69921e1211\" title=\"Wang Y, Li Z, Hu D, Lin CT, Li J, Lin Y. Aptamer\/graphene oxide nanocomplex for in situ molecular probing in living cells. J Am Chem Soc. 2010;132(27):9274\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR77\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 77\">77<\/a>]. If the size of GO is larger than the size of the vessels, GO usually becomes stuck in the arteries and capillaries in the proximity of the injection site. The accumulation of GO in the lungs was shown to increase with an increase in the injected dose and size, but that in the liver significantly decreased [<a id=\"ref-link-section-d69921e1215\" title=\"Liu JH, Yang ST, Wang H, Chang Y, Cao A, Liu Y. Effect of size and dose on the biodistribution of graphene oxide in mice. Nanomedicine. 2012;7(12):1801\u201312.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR78\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 78\">78<\/a>]. Coating biocompatible polymers onto GO also affects the biodistribution, for instance, the intravenous injection of GO-PEG and GO-dextran (GO-DEX) accumulate in the reticuloendothelial system (RES), including the liver and spleen, without short-term toxicity [<a id=\"ref-link-section-d69921e1218\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>, <a id=\"ref-link-section-d69921e1221\" title=\"Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR79\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 79\">79<\/a>]. Moreover, the charge of plasma proteins and adsorption of GO by plasma proteins also affects the biodistribution [<a id=\"ref-link-section-d69921e1224\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>].<\/p>\n<p>The excretion and clearance of GFNs vary in different organs. In the lungs, observations indicated that NGO is drawn into and cleared by AMs, which might be eliminated from the sputum through mucociliary clearance or other ways [<a id=\"ref-link-section-d69921e1230\" title=\"Ruge CA, Schaefer UF, Herrmann J, Kirch J, Canadas O, Echaide M, et al. The interplay of lung surfactant proteins and lipids assimilates the macrophage clearance of nanoparticles. PLoS One. 2012;7(7):e40775.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR57\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 57\">57<\/a>], and 46.2\u00a0% of the intratracheally instilled FLG was excreted through the faeces 28 d after exposure [<a id=\"ref-link-section-d69921e1233\" title=\"Liang M, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1):1\u201312.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR61\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 61\">61<\/a>]. In the liver, nanoparticles can be eliminated thorough the hepato-biliary pathway following the biliary duct into the duodenum [<a id=\"ref-link-section-d69921e1236\" title=\"Hirn S, Semmler-Behnke M, Schleh C, Wenk A, Lipka J, Schaffler M, et al. Particle size-dependent and surface charge-dependent biodistribution of gold nanoparticles after intravenous administration. Eur J Pharm Biopharm. 2011;77(3):407\u201316.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR80\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 80\">80<\/a>]. In addition, PEGylated GNS that mainly accumulates in the liver and spleen can be gradually cleared, likely by both renal and faecal excretion. As recently reviewed, GO sheets larger than 200\u00a0nm are trapped by splenic physical filtration, but small sizes (approximately 8\u00a0nm) can penetrate the renal tubules into the urine and be rapidly removed without obvious toxicity [<a id=\"ref-link-section-d69921e1239\" title=\"Li B, Zhang XY, Yang JZ, Zhang YJ, Li WX, Fan CH, et al. Influence of polyethylene glycol coating on biodistribution and toxicity of nanoscale graphene oxide in mice after intravenous injection. Int J Nanomedicine. 2014;9:4697\u2013707.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR81\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 81\">81<\/a>]. The excretion paths of GFNs have not yet been clearly explained, but renal and faecal routes appear to be the main elimination routes for graphene.<\/p>\n<p>Recently, the distribution and excretion\/toxicity strategy has become an important part of nano-toxicological studies. To date, several controversial results regarding the distribution and excretion of graphene in vivo have been reported in several papers, and a systematic evaluation of the toxicokinetics of GFNs is still needed. The metabolism and excretion of nanomaterials are long-period processes, however, the recent studies of GFNs had been limited to short-term toxicological assessments, and the long-term accumulation and toxicity of GFNs on different tissues remain unknown. Therefore, long-term studies on the deposition and excretion of GFNs need to be performed using different cells and animals to ensure the materials\u2019 biosafety before utilization in human biomedical applications.<\/p>\n<h3 id=\"Sec10\" class=\"c-article__sub-heading\">Uptake and location of GFNs in cells<\/h3>\n<p>The uptake and location of GFNs have also been observed to exert different effects in different cell lines. Graphene is taken up into cells via various routes [<a id=\"ref-link-section-d69921e1255\" title=\"Zhang Y, Ali SF, Dervishi E, Xu Y, Li Z, Casciano D, et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. ACS Nano. 2010;4(6):3181\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR82\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 82\">82<\/a>, <a id=\"ref-link-section-d69921e1258\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>]. Basically, the physicochemical parameters such as the size, shape, coating, charge, hydrodynamic diameter, isoelectric point, and pH gradient are important to allow GO to pass through the cell membrane [<a id=\"ref-link-section-d69921e1261\" title=\"Sydlik SA, Jhunjhunwala S, Webber MJ, Anderson DG, Langer R. In vivo compatibility of graphene oxide with differing oxidation states. ACS Nano. 2015;9(4):3866\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR84\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 84\">84<\/a>]. As stated previously, nanoparticles with diameters &lt;100\u00a0nm can enter cells, and those with diameters &lt;40\u00a0nm can enter the nucleus [<a id=\"ref-link-section-d69921e1264\" title=\"Mytych J, Wnuk M. Nanoparticle technology as a double-edged sword: cytotoxic, genotoxic and epigenetic effects on living cells. J Biomater Nanobiotechnol. 2013;4:53\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR85\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 85\">85<\/a>]. For example, GQDs possibly penetrate cell membranes directly, rather than through energy-dependent pathways [<a id=\"ref-link-section-d69921e1267\" title=\"Peng C, Hu W, Zhou Y, Fan C, Huang Q. Intracellular imaging with a graphene-based fluorescent probe. Small. 2010;6(15):1686\u201392.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR86\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 86\">86<\/a>, <a id=\"ref-link-section-d69921e1271\" title=\"Wang D, Zhu L, Chen JF, Dai L. Can graphene quantum dots cause DNA damage in cells? Nanoscale. 2015;7(21):9894\u2013901.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR87\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 87\">87<\/a>]. Larger protein-coated graphene oxide nanoparticles (PCGO) (~1\u00a0\u03bcm) enter cells mainly through phagocytosis, and smaller PCGO nanoparticles (~500\u00a0nm) enter cells primarily through clathrin-mediated endocytosis [<a id=\"ref-link-section-d69921e1274\" title=\"Mu Q, Su G, Li L, Gilbertson BO, Yu LH, Zhang Q, et al. Size-dependent cell uptake of protein-coated graphene oxide nanosheets. ACS Appl Mater Interf. 2012;4(4):2259\u201366.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR88\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 88\">88<\/a>]. GO sheets could adhere and wrap around the cell membrane, insert in the lipid bilayer or be internalized into the cell as a consequence of interactions with cells [<a id=\"ref-link-section-d69921e1277\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>]. Similarly, PEGylated reduced graphene oxide (PrGO) and rGO were shown to adhere onto the lipid bilayer cell membrane prominently due to the interaction of hydrophobic, unmodified graphitic domains with the cell membrane [<a id=\"ref-link-section-d69921e1280\" title=\"Kostarelos K, Novoselov KS. Materials science. Exploring the interface of graphene and biology. Science. 2014;344(6181):261\u20133.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR90\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 90\">90<\/a>, <a id=\"ref-link-section-d69921e1283\" title=\"Sasidharan A, Panchakarla LS, Chandran P, Menon D, Nair S, Rao CN, et al. Differential nano-bio interactions and toxicity effects of pristine versus functionalized graphene. Nanoscale. 2011;3(6):2461\u20134.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR91\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 91\">91<\/a>]. Consequently, it was suggested that prolonged exposure to or a high concentration of graphene induces physical or biological damage to the cell membrane, along with destabilization of actin filaments and the cytoskeleton [<a id=\"ref-link-section-d69921e1286\" title=\"Li Y, Yuan H, von dem Bussche A, Creighton M, Hurt RH, Kane AB, et al. Graphene microsheets enter cells through spontaneous membrane penetration at edge asperities and corner site. Proc Natl Acad Sci U S A. 2013;110(1091\u20136490 (Electronic)):12295\u2013300.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR92\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 92\">92<\/a>].<\/p>\n<p>Current data demonstrates that GO sheets interact with the plasma membrane and are phagocytosed by macrophages. Three major receptors on macrophages take part in the phagocytosis of GNS: the Fcg receptor (FcgR), mannose receptor (MR), and complement receptor (CR). Furthermore, FcgR is a key receptor in the mediated phagocytic pathway [<a id=\"ref-link-section-d69921e1292\" title=\"Kostarelos K, Novoselov KS. Materials science. Exploring the interface of graphene and biology. Science. 2014;344(6181):261\u20133.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR90\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 90\">90<\/a>, <a id=\"ref-link-section-d69921e1295\" title=\"Qu G, Liu S, Zhang S, Wang L, Wang X, Sun B, et al. Graphene oxide induces toll-like receptor 4 (TLR4)-dependent necrosis in macrophages. ACS Nano. 2013;7(7):5732\u201345.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR93\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 93\">93<\/a>, <a id=\"ref-link-section-d69921e1298\" title=\"Ma J, Liu R, Wang X, Liu Q, Chen Y, Valle RP, et al. Crucial role of lateral size for graphene oxide in activating macrophages and stimulating Pro-inflammatory responses in cells and animals. ACS Nano. 2015;9(10):10498\u2013515.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR94\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 94\">94<\/a>]. The protein corona of GO promotes the recognition by macrophage receptors, especially the IgG contained within the protein corona. Macrophages were observed to undergo prodigious morphological changes upon contact with GO [<a id=\"ref-link-section-d69921e1301\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>]. After internalization, graphene accumulated in the cell cytoplasm, perinuclear space, and nucleus, which induced cytotoxicity in murine macrophages by increasing intracellular ROS through depletion of the mitochondrial membrane potential and by triggering apoptosis through activation of the mitochondrial pathway [<a id=\"ref-link-section-d69921e1304\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>]. The possible interactions and accumulation sites of GFNs are summarized in Fig.\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>.<\/p>\n<div id=\"figure-1\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Fig. 1\">\n<figure><figcaption><b id=\"Fig1\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 1<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/1\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig1_HTML.gif?as=webp\" type=\"image\/webp\" \/><img decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig1_HTML.gif\" alt=\"figure1\" aria-describedby=\"Fig1\" \/><\/picture><\/a><\/div>\n<div id=\"figure-1-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>Graphene materials and their biological interactions. (<b>A<\/b>) A parameter space for the most widely used graphene materials can be described by the dimensions and surface functionalization of the material, the latter defined as the percentage of the carbon atoms in sp3 hybridization. Green squares represent epitaxially grown graphene; <i>yellow<\/i>, mechanically exfoliated graphene; <i>red<\/i>, chemically exfoliated graphene; <i>blue<\/i>, graphene oxide. Note that a number of other graphene-related materials (such as graphene quantum dots and graphene nanoribbons) are also being used in experiments. (<b>B<\/b>) Possible interactions between graphene-related materials with cells (the graphene flakes are not to scale). (<i>a<\/i>) Adhesion onto the outer surface of the cell membrane. (<i>b<\/i>) Incorporation in between the monolayers of the plasma membrane lipid bilayer. (<i>c<\/i>) Translocation of membrane. (<i>d<\/i>) Cytoplasmic internalization. (<i>e<\/i>) Clathrin-mediated endocytosis. (<i>f<\/i>) Endosomal or phagosomal internalization. (<i>g<\/i>) Lysosomal or other perinuclear compartment localization. (<i>h<\/i>) Exosomal localization. The biological outcomes from such interactions can be considered to be either adverse or beneficial, depending on the context of the particular biomedical application. Different graphene-related materials will have different preferential mechanisms of interaction with cells and tissues that largely await discovery. [<a id=\"ref-link-section-d69921e1362\" title=\"Kostarelos K, Novoselov KS. Materials science. Exploring the interface of graphene and biology. Science. 2014;344(6181):261\u20133.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR90\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 90\">90<\/a>] Copyright (2014), with permission from American Association for Advancement of Science<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/1\" rel=\"nofollow\" data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" data-track-dest=\"link:Figure1 Full size image\" aria-label=\"Full size image figure 1\">Full size image<\/a><\/div>\n<\/figure>\n<\/div>\n<h3 id=\"Sec11\" class=\"c-article__sub-heading\">Toxicity of GFNs in organs<\/h3>\n<p>The toxicity and biocompatibility of GFNs has been observed and assessed through theoretical and animal model studies. At present, there are a mass of data demonstrating the toxicity of GFNs in different organs or systems in animals, so that it is hard to list all the data in this review. Thus we summarized a certain number literature and chose some in vivo toxicological studies of GFNs listed in Table\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Tab1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\">1<\/a>.<\/p>\n<div id=\"table-1\" class=\"c-article-table\" data-test=\"inline-table\" data-container-section=\"table\">\n<figure><figcaption class=\"c-article-table__figcaption\"><b id=\"Tab1\" data-test=\"table-caption\">Table 1 Toxicity of GFNs in organs<\/b><\/figcaption><div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/tables\/1\" rel=\"nofollow\" data-test=\"table-link\" data-track=\"click\" data-track-action=\"view table\" data-track-label=\"button\" aria-label=\"Full size table 1\">Full size table<\/a><\/div>\n<\/figure>\n<\/div>\n<h4 id=\"Sec12\" class=\"c-article__sub-heading c-article__sub-heading--small\">Toxicity in internal organs<\/h4>\n<p>GO can result in acute inflammation response and chronic injury by interfering with the normal physiological functions of important organs [<a id=\"ref-link-section-d69921e2159\" title=\"Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR32\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\">32<\/a>, <a id=\"ref-link-section-d69921e2162\" title=\"Li B, Zhang XY, Yang JZ, Zhang YJ, Li WX, Fan CH, et al. Influence of polyethylene glycol coating on biodistribution and toxicity of nanoscale graphene oxide in mice after intravenous injection. Int J Nanomedicine. 2014;9:4697\u2013707.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR81\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 81\">81<\/a>]. Oral gavage experiments did not show detectable absorption of GO through the gastrointestinal tract [<a id=\"ref-link-section-d69921e2165\" title=\"Mao L, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1743\u20138977 (Electronic)):1.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR95\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 95\">95<\/a>]. Interesting, a low dose of GO caused serious damage to the gastrointestinal tract after maternal mice drank a GO suspension rather than a high-dose of GO because a low dose of GO without agglomeration can easily attach to the gastrointestinal surface and cause destruction through its abundant sharp edges [<a id=\"ref-link-section-d69921e2168\" title=\"Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR53\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 53\">53<\/a>]. GFNs caused inflammation and remained in the lung on day 90 after a single intratracheal instillation, and even translocated to lung lymph nodes by a nose-only inhalation [<a id=\"ref-link-section-d69921e2171\" title=\"Park EJ, Lee SJ, Lee K, Choi YC, Lee BS, Lee GH, et al. Pulmonary persistence of graphene nanoplatelets may disturb physiological and immunological homeostasis. J Appl Toxicol. 2016.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR96\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 96\">96<\/a>, <a id=\"ref-link-section-d69921e2175\" title=\"Kim JK, Shin JH, Lee JS, Hwang JH, Lee JH, Baek JE, et al. 28-Day inhalation toxicity of graphene nanoplatelets in Sprague\u2013Dawley rats. Nanotoxicology. 2016;10(7):891\u2013901.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR97\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 97\">97<\/a>]. A high dose of GO that forms aggregations can block pulmonary blood vessels and result in dyspnea [<a id=\"ref-link-section-d69921e2178\" title=\"Singh SK, Singh MK, Nayak MK, Kumari S, Shrivastava S, Gracio JJ, et al. Thrombus inducing property of atomically thin graphene oxide sheets. ACS Nano. 2011;5(6):4987\u201396.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR50\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 50\">50<\/a>, <a id=\"ref-link-section-d69921e2181\" title=\"Singh SK, Singh MK, Kulkarni PP, Sonkar VK, Gracio JJ, Dash D. Amine-modified graphene: thrombo-protective safer alternative to graphene oxide for biomedical applications. ACS Nano. 2012;6(3):2731\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR98\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 98\">98<\/a>], and platelet thrombi were observed at high concentrations of 1 and 2\u00a0mg\/kg body weight via intravenous injection [<a id=\"ref-link-section-d69921e2184\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>]. GO reportedly disrupted the alveolar-capillary barrier, allowing inflammatory cells to infiltrate into the lungs and stimulate the release of pro-inflammatory cytokines [<a id=\"ref-link-section-d69921e2187\" title=\"Duch MC, Budinger GR, Liang YT, Soberanes S, Urich D, Chiarella SE, et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. Nano Lett. 2011;11(12):5201\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR99\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 99\">99<\/a>]. Fibrosis and inflammation could be verified by the increased levels of the protein markers collagen1, Gr1, CD68 and CD11b in the lungs. The use of Tween 80 to disperse FLG or a pluronic surfactant to disperse graphene was suggested to reduce the likelihood of lung fibrosis formation in cells or mice, whereas lung fibrosis was observed when graphene was suspended with bovine serum albumin (BSA) [<a id=\"ref-link-section-d69921e2190\" title=\"Wang X, Duch MC, Mansukhani N, Ji Z, Liao YP, Wang M, et al. Use of a pro-fibrogenic mechanism-based predictive toxicological approach for tiered testing and decision analysis of carbonaceous nanomaterials. ACS Nano. 2015;9(1936-086X (Electronic)):3032\u201343.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR100\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 100\">100<\/a>]. In addition, radioactive isotopes can be delivered into the lungs, accompanied by a depth distribution of <sup>125<\/sup>I-NGO in the lungs, and the isotopes might deposit there and result in mutations and cancers [<a id=\"ref-link-section-d69921e2196\" title=\"Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a>]. However, recent publications claimed no obvious pathological changes in mice exposed to low dosages of GO and functionalized graphene by intravenous injection, including aminated GO (GO-NH2), poly(acrylamide)-functionalized GO (GO-PAM), poly(acrylic acid)-functionalized GO (GO-PAA) and GO-PEG; only GO-PEG and GO-PAA induced less toxicity than pristine GO in vivo [<a id=\"ref-link-section-d69921e2199\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>, <a id=\"ref-link-section-d69921e2202\" title=\"Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR79\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 79\">79<\/a>, <a id=\"ref-link-section-d69921e2205\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>]. So the functional groups of GFNs and the working concentration or aggregate state largely influence the toxicity of GFNs. Recently, the ways to modify the functional group of GFNs, decrease the working concentration or change the aggregate condition are usually used to decrease the toxicity of GFNs.<\/p>\n<h4 id=\"Sec13\" class=\"c-article__sub-heading c-article__sub-heading--small\">Toxicity in the central nervous system<\/h4>\n<p>Graphene has largely benefited neurosurgery with the application of drug\/gene delivery for brain tumour treatment, intracranial and spinal biocompatible devices, biosensing and bioimaging techniques. Studies regarding the potentialities or risks of graphene in the brain have emerged. In the chicken embryo model, pristine graphene flakes decreased the ribonucleic acid level and the rate of deoxyribonucleic acid synthesis, leading to harmful effects on brain tissue development and the atypical ultrastructure was observed in the brain [<a id=\"ref-link-section-d69921e2216\" title=\"Sawosz E, Jaworski S, Kutwin M, Hotowy A, Wierzbicki M, Grodzik M, et al. Toxicity of pristine graphene in experiments in a chicken embryo model. Int J Nanomed. 2014;9:3913\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR101\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 101\">101<\/a>]. The recent researches of GFNs in the central nervous system are mostly involved in the application rather than the toxicity. The data of the toxic study on GFNs is underway.<\/p>\n<h4 id=\"Sec14\" class=\"c-article__sub-heading c-article__sub-heading--small\">Toxicity in reproduction and development system<\/h4>\n<p>Pristine graphene reduced the vascularization of the heart and the density of branched vessels after injection into fertilized chicken eggs followed by incubation for 19 d [<a id=\"ref-link-section-d69921e2227\" title=\"Sawosz E, Jaworski S, Kutwin M, Hotowy A, Wierzbicki M, Grodzik M, et al. Toxicity of pristine graphene in experiments in a chicken embryo model. Int J Nanomed. 2014;9:3913\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR101\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 101\">101<\/a>]. GO and rGO damage zebrafish embryos by influencing the embryo hatching rate and body length in a concentration-dependent manner. Although no obvious malformation or mortality was observed in exposed zebrafish embryos [<a id=\"ref-link-section-d69921e2230\" title=\"Liu XT, Mu XY, Wu XL, Meng LX, Guan WB, Ma YQ, et al. Toxicity of multi-walled carbon nanotubes, graphene oxide, and reduced graphene oxide to zebrafish embryos. Biomed Environ Sci. 2014;27(9):676\u201383.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR102\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 102\">102<\/a>], GO adhered to and was wrapped in the chorion of the zebrafish embryos, causing remarkable hypoxia and hatching delay. GO aggregates were retained in many organelles, such as the eyes, heart, yolk sac, and tail of the embryos, and apoptosis and reactive oxygen species (ROS) generation were observed in these regions [<a id=\"ref-link-section-d69921e2233\" title=\"Chen Y, Hu X, Sun J, Zhou Q. Specific nanotoxicity of graphene oxide during zebrafish embryogenesis. Nanotoxicology. 2016;10(1):42\u201352.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR103\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 103\">103<\/a>].<\/p>\n<p>The GFNs exert different toxicological effects on male or female reproductive system. Data showed that GO exerted very low or nearly no toxic effects on male reproduction even at a high dose via intra-abdominal injection [<a id=\"ref-link-section-d69921e2239\" title=\"Liang S, Xu S, Zhang D, He J, Chu M. Reproductive toxicity of nanoscale graphene oxide in male mice. Nanotoxicology. 2015;9(1):92\u2013105.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR66\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 66\">66<\/a>]. Additionally, rGO did not change the serum estrogen levels of non-pregnant female mice. The condition is different in the female mouse: mouse dams could give birth to healthy offspring after rGO injection before mating or during early gestation, and only a few abnormal foetuses were present among the rGO-injected dam litters. However, the pregnant mice had abortions at all dose, and most pregnant mice died when the high dose of rGO was injected during late gestation [<a id=\"ref-link-section-d69921e2242\" title=\"Xu S, Zhang Z, Chu M. Long-term toxicity of reduced graphene oxide nanosheets: Effects on female mouse reproductive ability and offspring development. Biomaterials. 2015;54:188\u2013200.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR44\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 44\">44<\/a>]. Notably, the development of offspring in the high dosage group was delayed during the lactation period. The high dose of GO decreased the maternal mice\u2019s water consumption by oral exposure, which reduced milk production and thus postponed the growth of offspring [<a id=\"ref-link-section-d69921e2245\" title=\"Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR53\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 53\">53<\/a>]. Though the findings indicate that GFNs are potentially harmful to development, but data on reproductive and developmental toxicity are still deficient. Studies of the influence of GFNs on male and female reproduction and development are still required to elucidate the underlying toxicity mechanism.<\/p>\n<h4 id=\"Sec15\" class=\"c-article__sub-heading c-article__sub-heading--small\">Influence of haemocompatibility<\/h4>\n<p>GO release into the blood is ineluctable. The haemocompatibility of GO was found to be dependent on the functional coating and the exposure conditions. GO with submicron size resulted in the greatest haemolytic activity, while aggregated graphene induced the lowest haemolytic reaction. Pristine graphene and GO demonstrated haemolytic effect up to 75\u00a0\u03bcg\/mL [<a id=\"ref-link-section-d69921e2257\" title=\"Sasidharan A, Panchakarla LS, Sadanandan AR, Ashokan A, Chandran P, Girish CM, et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. Smal. 2012;8(8):1251\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR104\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 104\">104<\/a>]. GO-polyethylenimine (GO-PEI) exhibited notable toxicity by binding to HSA, even at 1.6\u00a0\u03bcg\/mL [<a id=\"ref-link-section-d69921e2260\" title=\"Ding Z, Zhang Z, Ma H, Chen Y. In vitro hemocompatibility and toxic mechanism of graphene oxide on human peripheral blood T lymphocytes and serum albumin. ACS Appl Mater Interf. 2014;6(22):19797\u2013807.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR105\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 105\">105<\/a>]. Carboxylated graphene oxide (GO-COOH) showed significant cytotoxicity toward T lymphocytes at concentrations above 50\u00a0\u03bcg\/mL and had good biocompatibility below 25\u00a0\u03bcg\/mL, whereas GO-chitosan nearly inhibited haemolytic activity [<a id=\"ref-link-section-d69921e2263\" title=\"Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR106\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 106\">106<\/a>]. Until now, the corresponding risk of haemocompatibility has remained largely unknown.<\/p>\n<p>In conclusion, the lung injury induced by GFNs has been studied in several studies, the results of which have demonstrated inflammatory cell infiltration, pulmonary edema and granuloma formation in the lungs. However, only a few specific studies have evaluated in other organs, such as the liver, spleen, and kidney, and the injury symptoms, damage index and level of damage to these internal organs were not fully investigated. Moreover, studies on the neurotoxicity of GFNs are quite rare; no data has revealed which nerves or brain areas experience damage, nor have the related behavioural manifestations been studied. The developmental toxicity of GFNs may induce structural abnormalities, growth retardation, behavioural and functional abnormalities, and even death. A study on the reproductive and developmental toxicity of GFNs will be extremely significant and gain extensive attention in the future. Almost all the GFNs toxicity studies were short-period experiments, and no studies have investigated long-term chronic toxic injury. However, based on studies of other nanomaterials toxicity, long-term GFNs exposure may be an important factor harming health [<a id=\"ref-link-section-d69921e2269\" title=\"Kouhi SMM, Lahouti M, Ganjeali A, Entezari MH. Long-term exposure of rapeseed (Brassica napus L.) to ZnO nanoparticles: anatomical and ultrastructural responses. Environ Sci Pollut Res. 2015;22(1614\u20137499 (Electronic)):10733\u201343.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR107\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 107\">107<\/a>\u2013<a id=\"ref-link-section-d69921e2272\" title=\"Sancey L, Kotb S, Truillet C, Appaix F, Marais A, Thomas E, et al. Long-term in vivo clearance of gadolinium-based AGuIX nanoparticles and their biocompatibility after systemic injection. ACS Nano. 2015;9(1936-086X (Electronic)):2477\u201388.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR109\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 109\">109<\/a>]. Therefore, the long-term study of GFNs is necessary.<\/p>\n<h3 id=\"Sec16\" class=\"c-article__sub-heading\">Toxicity of GFNs in cell models<\/h3>\n<p>The cytotoxicity of GFNs in vitro has been verified in various cells to change the cell viability and morphology, destroy the membrane integrity, and induce DNA damage [<a id=\"ref-link-section-d69921e2284\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>\u2013<a id=\"ref-link-section-d69921e2287\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>]. GO or rGO decrease cell adhesion; induce cell apoptosis; and enter lysosomes, mitochondria, cell nuclei, and endoplasm [<a id=\"ref-link-section-d69921e2290\" title=\"Vallabani NV, Mittal S, Shukla RK, Pandey AK, Dhakate SR, Pasricha R, et al. Toxicity of graphene in normal human lung cells (BEAS-2B). J Biomed Nanotechnol. 2011;7(1):106\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR113\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 113\">113<\/a>]. GQDs entered cells and induced DNA damage by the increased expression of p53, Rad 51, and OGG1 proteins in NIH-3\u00a0T3 cells [<a id=\"ref-link-section-d69921e2293\" title=\"Wang D, Zhu L, Chen JF, Dai L. Can graphene quantum dots cause DNA damage in cells? Nanoscale. 2015;7(21):9894\u2013901.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR87\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 87\">87<\/a>]. However, GQDs did not pose significant toxicity to human breast cancer cell lines (at a dose of 50\u00a0\u03bcg\/mL) or human neural stem cells (at a dose of 250\u00a0\u03bcg\/mL) [<a id=\"ref-link-section-d69921e2296\" title=\"Peng J, Gao W, Gupta BK, Liu Z, Romero-Aburto R, Ge L, et al. Graphene quantum dots derived from carbon fibers. Nano Lett. 2012;12(1530\u20136992 (Electronic)):844\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR114\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 114\">114<\/a>, <a id=\"ref-link-section-d69921e2300\" title=\"Shang W, Zhang X, Zhang M, Fan Z, Sun Y, Han M, et al. The uptake mechanism and biocompatibility of graphene quantum dots with human neural stem cells. Nanoscale. 2014;6(2040\u20133372 (Electronic)):5799\u2013806.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR115\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 115\">115<\/a>]. GO derivatives dramatically decreased the expression of differential genes that are responsible for the structure and function of the cell membrane, such as regulation of the actin cytoskeleton, focal adhesion and endocytosis [<a id=\"ref-link-section-d69921e2303\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>]. In rat pheochromocytoma cells (PC12 cells), graphene and rGO caused cytotoxic effects and mitochondrial injury, such as the release of lactate dehydrogenase (LDH), an increase in the activation of caspase-3, and the generation of ROS [<a id=\"ref-link-section-d69921e2306\" title=\"Zhang Y, Ali SF, Dervishi E, Xu Y, Li Z, Casciano D, et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. ACS Nano. 2010;4(6):3181\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR82\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 82\">82<\/a>, <a id=\"ref-link-section-d69921e2309\" title=\"Zhang L, Xia J, Zhao Q, Liu L, Zhang Z. Functional graphene oxide as a nanocarrier for controlled loading and targeted delivery of mixed anticancer drugs. Small. 2010;6(4):537\u201344.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR116\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 116\">116<\/a>].<\/p>\n<p>Graphene can increase cell viability [<a id=\"ref-link-section-d69921e2315\" title=\"Ruiz ON, Fernando KA, Wang B, Brown NA, Luo PG, McNamara ND, et al. Graphene oxide: a nonspecific enhancer of cellular growth. ACS Nano. 2011;5(10):8100\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR117\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 117\">117<\/a>] or cause cell death [<a id=\"ref-link-section-d69921e2318\" title=\"Akhavan O, Ghaderi E, Akhavan A. Size-dependent genotoxicity of graphene nanoplatelets in human stem cells. Biomaterials. 2012;33(32):8017\u201325.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR118\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 118\">118<\/a>] depending on the cell line, type of graphene material and the doseage. GO cytotoxicity was observed in human fibroblasts and lung epithelial cells at concentrations above 20\u00a0\u03bcg\/mL after 24\u00a0h, but minimal toxicity was found in A549 cells at concentrations higher than 50\u00a0\u03bcg\/mL [<a id=\"ref-link-section-d69921e2321\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>]. The biological responses induced by GO such as ROS, malondialdehyde (MDA), and LDH increased, whereas superoxide dismutase (SOD) decreased dose-dependently in HeLa cells [<a id=\"ref-link-section-d69921e2324\" title=\"Zhang X, Hu W, Li J, Tao L, Wei Y. A comparative study of cellular uptake and cytotoxicity of multi-walled carbon nanotubes, graphene oxide, and nanodiamond. Toxicol Res. 2012;1(1):62\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR120\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 120\">120<\/a>]. However, GO-molecular beacon (GO-MB) showed low cytotoxicity even at 20\u00a0\u03bcg\/mL in HeLa cells [<a id=\"ref-link-section-d69921e2327\" title=\"Lu CH, Zhu CL, Li J, Liu JJ, Chen X, Yang HH. Using graphene to protect DNA from cleavage during cellular delivery. Chem Commun. 2010;46(1364-548X (Electronic)):3116\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR121\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 121\">121<\/a>]. GO decreased the viability of A549 cells, while the same concentration and time of exposure increased the cell viability of CaCo2 colorectal carcinoma cells [<a id=\"ref-link-section-d69921e2331\" title=\"De Marzi L, Ottaviano L, Perrozzi F, Nardone M, Santucci S, De Lapuente J, et al. Flake size-dependent cyto and genotoxic evaluation of graphene oxide on in vitro A549, CaCo2 and vero cell lines. J Biol Regul Homeost Agents. 2014;28(2):281\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR122\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 122\">122<\/a>]. Another study reported that GO dramatically enhanced the differentiation of SH-SY5Y, accompanied by increasing neurite length and the expression of neuronal marker MAP2 at low concentrations but that GO suppressed the viability of SH-SY5Y cells at high doses (\u226580\u00a0mg\/mL) [<a id=\"ref-link-section-d69921e2334\" title=\"Lv M, Zhang Y, Liang L, Wei M, Hu W, Li X, et al. Effect of graphene oxide on undifferentiated and retinoic acid-differentiated SH-SY5Y cells line. Nanoscale. 2012;4(13):3861\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR123\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 123\">123<\/a>]. Functionalized coatings on GO, such as GO-PEG [<a id=\"ref-link-section-d69921e2337\" title=\"Reshma SC, Syama S, Mohanan PV. Nano-biointeractions of PEGylated and bare reduced graphene oxide on lung alveolar epithelial cells: A comparative in vitro study. Colloids Surf B Biointerf. 2016;140(1873\u20134367 (Electronic)):104\u201316.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR124\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 124\">124<\/a>] and GO-chitosan [<a id=\"ref-link-section-d69921e2340\" title=\"Rana VK, Choi MC, Kong JY, Kim GY, Mi JK, Kim SH, et al. Synthesis and drug\u2010delivery behavior of chitosan\u2010functionalized graphene oxide hybrid nanosheets. Macromol Mater Eng. 2011;296(2):131\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR125\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 125\">125<\/a>], can profoundly attenuate the particles\u2019 cytotoxicity by inhibiting the interactions between cells.<\/p>\n<p>The toxicity of GFNs in vitro is summarized in Table\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Tab2\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\">2<\/a>. Data on the cytotoxicity of graphene nanomaterials are contrasting, and varying characteristics influence the results. The mechanisms and influencing factors of toxicity need to be elucidated in detail.<\/p>\n<div id=\"table-2\" class=\"c-article-table\" data-test=\"inline-table\" data-container-section=\"table\">\n<figure><figcaption class=\"c-article-table__figcaption\"><b id=\"Tab2\" data-test=\"table-caption\">Table 2 Toxicity of GFNs in cell models<\/b><\/figcaption><div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/tables\/2\" rel=\"nofollow\" data-test=\"table-link\" data-track=\"click\" data-track-action=\"view table\" data-track-label=\"button\" aria-label=\"Full size table 2\">Full size table<\/a><\/div>\n<\/figure>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Origins of GFNs toxicity\">\n<div id=\"Sec17-section\" class=\"c-article-section\">\n<h2 id=\"Sec17\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Origins of GFNs toxicity<\/h2>\n<div id=\"Sec17-content\" class=\"c-article-section__content\">\n<p>Reportedly, the characteristics of graphene, including its concentration, lateral dimension, surface structure, functional groups, purity and protein corona, strongly influence its toxicity in biological systems [<a id=\"ref-link-section-d69921e3256\" title=\"Sanchez VC, Jachak A, Hurt RH, Kane AB. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. Chem Res Toxicol. 2012;25(1):15\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR2\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\">2<\/a>, <a id=\"ref-link-section-d69921e3259\" title=\"Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>, <a id=\"ref-link-section-d69921e3262\" title=\"Sasidharan A, Panchakarla LS, Sadanandan AR, Ashokan A, Chandran P, Girish CM, et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. Smal. 2012;8(8):1251\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR104\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 104\">104<\/a>, <a id=\"ref-link-section-d69921e3265\" title=\"Yang K, Li Y, Tan X, Peng R, Liu Z. Behavior and toxicity of graphene and its functionalized derivatives in biological systems. Small. 2013;9(9\u201310):1492\u2013503.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR126\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 126\">126<\/a>\u2013<a id=\"ref-link-section-d69921e3268\" title=\"Misra SK, Kondaiah P, Bhattacharya S, Rao CN. Graphene as a nanocarrier for tamoxifen induces apoptosis in transformed cancer cell lines of different origins. Small. 2012;8(1):131\u201343.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR129\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 129\">129<\/a>].<\/p>\n<h3 id=\"Sec18\" class=\"c-article__sub-heading\">Concentration<\/h3>\n<p>Numerous results have shown that graphene materials cause dose-dependent toxicity in animals and cells, such as liver and kidney injury, lung granuloma formation, decreased cell viability and cell apoptosis [<a id=\"ref-link-section-d69921e3278\" title=\"Singh Z. Applications and toxicity of graphene family nanomaterials and their composites. Nanotechnol Sci Appl. 2016;9(1177\u20138903 (Electronic)):15.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR130\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 130\">130<\/a>\u2013<a id=\"ref-link-section-d69921e3281\" title=\"Wang ZG, Zhou R, Jiang D, Song JE, Xu Q, Si J, et al. Toxicity of graphene quantum dots in zebrafish embryo. Biomed Environ Sci. 2015;28(0895\u20133988 (Print)):341\u201351.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR134\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 134\">134<\/a>]. In vivo studies, GO did not exhibit obvious toxicity in mice exposed to a low dose (0.1\u00a0mg) and middle dose (0.25\u00a0mg) but induced chronic toxicity at a high dose (0.4\u00a0mg). The high content of GO mainly deposited in the lungs, liver, spleen, and kidneys and was difficult to be cleaned by the kidneys via a single tail vein injection [<a id=\"ref-link-section-d69921e3284\" title=\"Wang K, Jing R, Song H, Zhang J, Yan W, Guo S, et al. Biocompatibility of graphene oxide. Nanoscale Res Lett. 2010;6(1):1\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR135\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 135\">135<\/a>]. Intriguingly, increasing the dose resulted in a dramatic decrease in the hepatic uptake but an increase in the pulmonary uptake of s-GO by intravenous injection [<a id=\"ref-link-section-d69921e3287\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>], because the high dose of GO potentially surpassed the uptake saturation or depleted the mass of plasma opsonins, which consequently suppressed the hepatic uptake. Moreover, an in vitro study reported that 20\u00a0\u03bcg\/mL GO nanosheets exhibited no cytotoxicity in A549 within 2\u00a0h of incubation, but a higher concentration (85\u00a0\u03bcg\/mL) decreased the cell viability to 50\u00a0% within 24\u00a0h [<a id=\"ref-link-section-d69921e3290\" title=\"Hu W, Peng C, Luo W, Lv M, Li X, Li D, et al. Graphene-based antibacterial paper. ACS Nano. 2010;4(7):4317\u201323.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR136\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 136\">136<\/a>, <a id=\"ref-link-section-d69921e3294\" title=\"Dreyer DR, Park S, Bielawski CW, Ruoff RS. The chemistry of graphene oxide. Chem Soc Rev. 2010;39(1):228\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR137\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 137\">137<\/a>]. L\u00fc et al. also demonstrated that GO had no obvious cytotoxicity at low concentrations for 96\u00a0h in a human neuroblastoma SH-SY5Y cell line, but the viability of cells sharply decreased to 20\u00a0% after treatment with 100\u00a0mg\/mL GO for 96\u00a0h of incubation [<a id=\"ref-link-section-d69921e3297\" title=\"Lv M, Zhang Y, Liang L, Wei M, Hu W, Li X, et al. Effect of graphene oxide on undifferentiated and retinoic acid-differentiated SH-SY5Y cells line. Nanoscale. 2012;4(13):3861\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR123\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 123\">123<\/a>]. The results in HeLa cells, NIH-3\u00a0T3 cells, and breast cancer cells (SKBR3, MCF7) treated with graphene nanoribbons also showed a dose- (10\u2013400\u00a0mg\/ml) and time-dependent (12\u201348\u00a0h) decrease in cell viability [<a id=\"ref-link-section-d69921e3300\" title=\"Mullick Chowdhury S, Lalwani G, Zhang K, Yang JY, Neville K, Sitharaman B. Cell specific cytotoxicity and uptake of graphene nanoribbons. Biomaterials. 2013;34(1):283\u201393.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR138\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 138\">138<\/a>]. Increasing concentrations of GO entered the lysosomes, mitochondria, endoplasm, and cell nucleus [<a id=\"ref-link-section-d69921e3303\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>]. Several data indicated that rGO caused apoptosis-mediated cell death at a lower dose and early time point but that necrosis was prevalent with the increase in time\/dose [<a id=\"ref-link-section-d69921e3306\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>, <a id=\"ref-link-section-d69921e3309\" title=\"Wang K, Jing R, Song H, Zhang J, Yan W, Guo S, et al. Biocompatibility of graphene oxide. Nanoscale Res Lett. 2010;6(1):1\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR135\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 135\">135<\/a>].<\/p>\n<h3 id=\"Sec19\" class=\"c-article__sub-heading\">Lateral dimension<\/h3>\n<p>Nanoparticles with sizes &lt;100\u00a0nm can enter the cell, &lt;40\u00a0nm can enter nucleus, and smaller than &lt;35\u00a0nm can cross the blood brain barrier [<a id=\"ref-link-section-d69921e3320\" title=\"Mytych J, Wnuk M. Nanoparticle technology as a double-edged sword: cytotoxic, genotoxic and epigenetic effects on living cells. J Biomater Nanobiotechnol. 2013;4:53\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR85\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 85\">85<\/a>]. One study showed that GO (588, 556, 148\u00a0nm) did not enter A549 cells and had no obvious cytotoxicity [<a id=\"ref-link-section-d69921e3323\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>]. When the diameter of graphene is between 100\u2009~\u2009500\u00a0nm, the smallest size may cause the most severe toxicity, and when the diameter is below 40\u00a0nm, the smallest sizes may be the safest. For instance, rGO with a diameter of 11\u2009\u00b1\u20094\u00a0nm could enter into the nucleus of the hMSCs and cause chromosomal aberrations and DNA fragmentation at very low concentrations of 0.1 and 1.0\u00a0mg\/mL in 1\u00a0h. However, rGO sheets with diameters of 3.8\u2009\u00b1\u20090.4\u00a0nm exhibited no notable genotoxicity in hMSCs even at a high dose of 100\u00a0mg\/mL after 24\u00a0h [<a id=\"ref-link-section-d69921e3326\" title=\"Akhavan O, Ghaderi E, Akhavan A. Size-dependent genotoxicity of graphene nanoplatelets in human stem cells. Biomaterials. 2012;33(32):8017\u201325.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR118\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 118\">118<\/a>].<\/p>\n<p>In an in vivo study, s-GO (100\u2013500\u00a0nm) preferentially accumulated in the liver, whereas l-GO (1\u20135\u00a0\u03bcm) was mainly located in the lungs because l-GO formed larger GO-protein complexes that were filtered out by the pulmonary capillary vessels after intravenously injection [<a id=\"ref-link-section-d69921e3332\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>]. Given the relative lateral sizes (205.8\u00a0nm, 146.8\u00a0nm and 33.78\u00a0nm) of the three GO nanosheets at the same concentration, smaller GO experiences much greater uptake than larger GO in Hela cells [<a id=\"ref-link-section-d69921e3335\" title=\"Zhang H, Peng C, Yang J, Lv M, Liu R, He D, et al. Uniform ultrasmall graphene oxide nanosheets with low cytotoxicity and high cellular uptake. ACS Appl Mater Interf. 2013;5(5):1761\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR139\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 139\">139<\/a>]. The high uptake of s-GO changed in the microenvironment of cells and consequently induced the greatest viability loss and most serious oxidative stress among three sizes of GO samples [<a id=\"ref-link-section-d69921e3338\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>]. As a result, one study delineated that GO size-dependently induced the M1 polarization of macrophages and pro-inflammatory responses in vitro and in vivo. Larger GO showed stronger adsorption onto the plasma membrane with less phagocytosis, eliciting robust interactions with TLRs and activating NF-\u03baB pathways, compared to smaller GO sheets, which were more likely taken up by cells [<a id=\"ref-link-section-d69921e3341\" title=\"Ma J, Liu R, Wang X, Liu Q, Chen Y, Valle RP, et al. Crucial role of lateral size for graphene oxide in activating macrophages and stimulating Pro-inflammatory responses in cells and animals. ACS Nano. 2015;9(10):10498\u2013515.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR94\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 94\">94<\/a>]. To further uncover the detailed mechanism underlying these effects, more studies are needed to illustrate the vital mechanism of the lateral size of graphene materials.<\/p>\n<h3 id=\"Sec20\" class=\"c-article__sub-heading\">Surface structure<\/h3>\n<p>GFNs possess widely varying surface chemistries. For example, the pristine graphene surface is hydrophobic, GO surface is partially hydrophobic with carboxylate groups [<a id=\"ref-link-section-d69921e3352\" title=\"Hasan SA, Rigueur JL, Harl RR, Krejci AJ, Isabel GJ, Rogers BR, et al. Transferable graphene oxide films with tunable microstructures. ACS Nano. 2010;4(12):7367\u201372.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR140\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 140\">140<\/a>\u2013<a id=\"ref-link-section-d69921e3355\" title=\"Yang ST, Chang Y, Wang H, Liu G, Sheng C, Wang Y, et al. Folding\/aggregation of graphene oxide and its application in Cu 2+ removal. J Colloid Interf Sci. 2010;351(1):122\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR142\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 142\">142<\/a>], and rGO has intermediate hydrophilicity [<a id=\"ref-link-section-d69921e3358\" title=\"Bagri A, Mattevi C, Acik M, Chabal YJ, Chhowalla M, Shenoy VB. Structural evolution during the reduction of chemically derived graphene oxide. Nat Chem. 2010;2(7):581\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR143\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 143\">143<\/a>]. GFNs were observed to disrupt the function and structure of cell membranes and proteins probably by exceptionally strong molecular interactions with cells [<a id=\"ref-link-section-d69921e3361\" title=\"Sanchez VC, Jachak A, Hurt RH, Kane AB. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. Chem Res Toxicol. 2012;25(1):15\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR2\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\">2<\/a>, <a id=\"ref-link-section-d69921e3364\" title=\"Sasidharan A, Panchakarla LS, Chandran P, Menon D, Nair S, Rao CN, et al. Differential nano-bio interactions and toxicity effects of pristine versus functionalized graphene. Nanoscale. 2011;3(6):2461\u20134.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR91\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 91\">91<\/a>]. For instance, rGO bonded to cell membranes, stimulated receptors and activated mitochondrial pathways, inducing apoptosis [<a id=\"ref-link-section-d69921e3368\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>, <a id=\"ref-link-section-d69921e3371\" title=\"Jaworski S, Sawosz E, Grodzik M, Winnicka A, Prasek M, Wierzbicki M, et al. In vitro evaluation of the effects of graphene platelets on glioblastoma multiforme cells. Int J Nanomed. 2013;8:413\u201320.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR111\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 111\">111<\/a>, <a id=\"ref-link-section-d69921e3374\" title=\"Hinzmann M, Jaworski S, Kutwin M, Jagiello J, Kozinski R, Wierzbicki M, et al. Nanoparticles containing allotropes of carbon have genotoxic effects on glioblastoma multiforme cells. Int J Nanomed. 2014;9:2409\u201317.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR144\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 144\">144<\/a>]. Limited evidence showed that GO is smaller and less toxic than rGO because of the high oxygen content, smoother edges, and hydrophilic properties of the former species [<a id=\"ref-link-section-d69921e3377\" title=\"Sasidharan A, Panchakarla LS, Sadanandan AR, Ashokan A, Chandran P, Girish CM, et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. Smal. 2012;8(8):1251\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR104\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 104\">104<\/a>, <a id=\"ref-link-section-d69921e3380\" title=\"Jin C, Wang F, Tang Y, Zhang X, Wang J, Yang Y. Distribution of graphene oxide and TiO2-graphene oxide composite in A549 cells. Biol Trace Elem Res. 2014;159(1\u20133):393\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR145\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 145\">145<\/a>, <a id=\"ref-link-section-d69921e3383\" title=\"Jarosz A, Skoda M, Dudek I, Szukiewicz D. Oxidative stress and mitochondrial activation as the main mechanisms underlying graphene toxicity against human cancer cells. Oxid Med Cell Longev. 2016;2016:5851035.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR146\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 146\">146<\/a>]. Because of the different surface oxidation states of GO and rGO, GO possessing distinct hydrophilicity might be internalized and taken up by HepG2 cells easily. On the contrary, rGO with evident hydrophobicity, could be adsorbed and aggregated at cell surfaces without (or with lower) uptake [<a id=\"ref-link-section-d69921e3387\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>]. Due to strong \u03c0-\u03c0 stacking interactions, graphene is highly capability of breaking many residues of the protein, particularly the aromatic ones, such as the villin headpiece (HP), F10, W23, and F35. The protein\u2019s secondary and tertiary structures are largely lying on the graphene surface, disrupting the structure and function of the protein [<a id=\"ref-link-section-d69921e3390\" title=\"Zhou R, Gao H. Cytotoxicity of graphene: recent advances and future perspective. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2014;6(5):452\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR41\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 41\">41<\/a>] (Fig.\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Fig2\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">2<\/a>). In addition, GO can insert between the base pairs of double-stranded DNA and disturb the flow of genetic information at the molecular level, which might be one of the main causes of the mutagenic effect of GO [<a id=\"ref-link-section-d69921e3396\" title=\"Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>, <a id=\"ref-link-section-d69921e3399\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>, <a id=\"ref-link-section-d69921e3402\" title=\"Jarosz A, Skoda M, Dudek I, Szukiewicz D. Oxidative stress and mitochondrial activation as the main mechanisms underlying graphene toxicity against human cancer cells. Oxid Med Cell Longev. 2016;2016:5851035.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR146\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 146\">146<\/a>, <a id=\"ref-link-section-d69921e3406\" title=\"Ren H, Wang C, Zhang J, Zhou X, Xu D, Zheng J, et al. DNA cleavage system of nanosized graphene oxide sheets and copper ions. ACS Nano. 2010;4(12):7169\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR147\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 147\">147<\/a>].<\/p>\n<div id=\"figure-2\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Fig. 2\">\n<figure><figcaption><b id=\"Fig2\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 2<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/2\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig2_HTML.gif?as=webp\" type=\"image\/webp\" \/><img decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig2_HTML.gif\" alt=\"figure2\" aria-describedby=\"Fig2\" \/><\/picture><\/a><\/div>\n<div id=\"figure-2-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>A representative trajectory of HP35 adsorbing onto the graphene. (<b>a<\/b>) Representative snapshots at various time points. The proteins are shown in cartoons with red helix and green loop, and the graphene is shown in wheat. The aromatic residues that form the \u03c0-\u03c0 stacking interactions are shown in blue, others are shown in green. (<b>b<\/b>) The contacting surface area of HP35 with the graphene. (<b>c<\/b>) The RMSD of HP35 from its native structure and the number of residues in the \u03b1-helix structure. Here, the secondary structures are determined by the DSSP program. (<b>d<\/b>) The distance between the graphene and the aromatic residues, including F35, W23, F10, F17, and F06. To show the adsorbing process clearer, the \u03c7-axis had been truncated and rescaled. [<a id=\"ref-link-section-d69921e3431\" title=\"Zhou R, Gao H. Cytotoxicity of graphene: recent advances and future perspective. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2014;6(5):452\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR41\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 41\">41<\/a>] Copyright (2011), with permission from Journal of Physical of Chemistry<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/2\" rel=\"nofollow\" data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" data-track-dest=\"link:Figure2 Full size image\" aria-label=\"Full size image figure 2\">Full size image<\/a><\/div>\n<\/figure>\n<\/div>\n<h3 id=\"Sec21\" class=\"c-article__sub-heading\">Charge<\/h3>\n<p>A number of studies have highlighted the importance of the GO surface charge because of its ability to affect the internalization and uptake mechanism of cells [<a id=\"ref-link-section-d69921e3452\" title=\"Wang A, Pu K, Dong B, Liu Y, Zhang L, Zhang Z, et al. Role of surface charge and oxidative stress in cytotoxicity and genotoxicity of graphene oxide towards human lung fibroblast cells. J Appl Toxicol. 2013;33(10):1156\u201364.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR148\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 148\">148<\/a>\u2013<a id=\"ref-link-section-d69921e3455\" title=\"Yue ZG, Wei W, Lv PP, Yue H, Wang LY, Su ZG, et al. Surface charge affects cellular uptake and intracellular trafficking of chitosan-based nanoparticles. Biomacromolecules. 2011;12(7):2440\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR150\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 150\">150<\/a>]. GO internalization was negligible in non-phagocytes, which was likely due to the strong electrostatic repulsion between the negatively charged GO and the cell surface [<a id=\"ref-link-section-d69921e3458\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>]. However, others have suggested that negatively charged nanoparticles can be internalized into non-phagocytic cells by binding to available cationic sites on the cell surface and be taken up by scavenger receptors [<a id=\"ref-link-section-d69921e3461\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>, <a id=\"ref-link-section-d69921e3464\" title=\"Jarosz A, Skoda M, Dudek I, Szukiewicz D. Oxidative stress and mitochondrial activation as the main mechanisms underlying graphene toxicity against human cancer cells. Oxid Med Cell Longev. 2016;2016:5851035.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR146\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 146\">146<\/a>, <a id=\"ref-link-section-d69921e3468\" title=\"Yue ZG, Wei W, Lv PP, Yue H, Wang LY, Su ZG, et al. Surface charge affects cellular uptake and intracellular trafficking of chitosan-based nanoparticles. Biomacromolecules. 2011;12(7):2440\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR150\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 150\">150<\/a>]. GO\/GS particles reportedly cause morphological changes and significant lysis, leading to high haemolysis in red blood cells (RBCs). RBC membrane disruption is probably attributed to the strong electrostatic interactions between the negatively charged oxygen groups on the GO\/GS surface and positively charged phosphatidylcholine lipids on the RBC outer membrane [<a id=\"ref-link-section-d69921e3471\" title=\"Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR106\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 106\">106<\/a>].<\/p>\n<h3 id=\"Sec22\" class=\"c-article__sub-heading\">Functionalization<\/h3>\n<p>Studies confirmed that functionalization with PEG [<a id=\"ref-link-section-d69921e3482\" title=\"Yang K, Wan J, Zhang S, Zhang Y, Lee ST, Liu Z. In vivo pharmacokinetics, long-term biodistribution, and toxicology of PEGylated graphene in mice. ACS Nano. 2011;5(1):516\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR52\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 52\">52<\/a>], PEGylated poly-L-lysine (PLL) [<a id=\"ref-link-section-d69921e3485\" title=\"Zhang W, Wang C, Li Z, Lu Z, Li Y, Yin JJ, et al. Unraveling stress-induced toxicity properties of graphene oxide and the underlying mechanism. Adv Mater. 2012;24(39):5391\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR151\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 151\">151<\/a>], poly(\u03b5-caprolactone) [<a id=\"ref-link-section-d69921e3488\" title=\"Wojtoniszak M, Chen X, Kalenczuk RJ, Wajda A, \u0141apczuk J, Kurzewski M, et al. Synthesis, dispersion, and cytocompatibility of graphene oxide and reduced graphene oxide. Colloids Surf B Biointerf. 2011;89(1):79\u201385.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR152\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 152\">152<\/a>], polyvinyl alcohol [<a id=\"ref-link-section-d69921e3491\" title=\"Yang XY, Wang YS, Huang X, Ma YF, Huang Y, Yang RC, et al. Multi-functionalized graphene oxide based anticancer drug-carrier with dual-targeting function and pH-sensitivity. J Mat Chem. 2011;21(10):3448\u201354.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR3\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 3\">3<\/a>], Pluronic [<a id=\"ref-link-section-d69921e3494\" title=\"Hu H, Yu J, Li Y, Zhao J, Dong H. Engineering of a novel pluronic F127\/graphene nanohybrid for pH responsive drug delivery. J Biomed Mater Res A. 2012;100(1):141\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR153\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 153\">153<\/a>], amine [<a id=\"ref-link-section-d69921e3498\" title=\"Singh SK, Singh MK, Kulkarni PP, Sonkar VK, Gracio JJ, Dash D. Amine-modified graphene: thrombo-protective safer alternative to graphene oxide for biomedical applications. ACS Nano. 2012;6(3):2731\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR98\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 98\">98<\/a>], carboxyl, and dextran [<a id=\"ref-link-section-d69921e3501\" title=\"Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR79\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 79\">79<\/a>] groups largely decreases the toxicity and improves the biocompatibility of graphene. In vivo results revealed that only mild chronic inflammation emerged after the subcutaneous injection of GO-Pluronic hydrogel and no noticeable short-term toxicity was tested after the intravenous injection of GO-DEX [<a id=\"ref-link-section-d69921e3504\" title=\"Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR79\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 79\">79<\/a>, <a id=\"ref-link-section-d69921e3507\" title=\"Sahu A, Choi WI, Tae G. A stimuli-sensitive injectable graphene oxide composite hydrogel. Chem Commun (Camb). 2012;48(47):5820\u20132.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR154\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 154\">154<\/a>]. PEGylated GS did not induce appreciable toxicity in mice exposed to 20\u00a0mg\/kg for 3\u00a0months, as evaluated by blood biochemistry and histological examinations, and showed relatively low retention in the RES [<a id=\"ref-link-section-d69921e3510\" title=\"Yang K, Wan J, Zhang S, Zhang Y, Lee ST, Liu Z. In vivo pharmacokinetics, long-term biodistribution, and toxicology of PEGylated graphene in mice. ACS Nano. 2011;5(1):516\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR52\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 52\">52<\/a>, <a id=\"ref-link-section-d69921e3513\" title=\"Yang K, Zhang S, Zhang G, Sun X, Lee ST, Liu Z. Graphene in mice: ultrahigh in vivo tumor uptake and efficient photothermal therapy. Nano Lett. 2010;10(9):3318\u201323.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR155\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 155\">155<\/a>]. Coating GO with chitosan almost eliminated the haemolytic activity in blood [<a id=\"ref-link-section-d69921e3517\" title=\"Wu SY, An SS, Hulme J. Current applications of graphene oxide in nanomedicine. Int J Nanomed. 2015;10(Spec Iss):9\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR39\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 39\">39<\/a>]. Moreover, the PEG coating effectively alleviated GO-induced acute tissue injuries; decreased GO aggregation and retention in the liver, lungs, and spleen; and promoted the clearance of GO [<a id=\"ref-link-section-d69921e3520\" title=\"Li B, Zhang XY, Yang JZ, Zhang YJ, Li WX, Fan CH, et al. Influence of polyethylene glycol coating on biodistribution and toxicity of nanoscale graphene oxide in mice after intravenous injection. Int J Nanomedicine. 2014;9:4697\u2013707.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR81\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 81\">81<\/a>], GO-DEX [<a id=\"ref-link-section-d69921e3523\" title=\"Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR79\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 79\">79<\/a>], and fluorinated graphene oxide (FGO) [<a id=\"ref-link-section-d69921e3526\" title=\"Romero-Aburto R, Narayanan TN, Nagaoka Y, Hasumura T, Mitcham TM, Fukuda T, et al. Fluorinated graphene oxide; a new multimodal material for biological applications. Adv Mater. 2013;25(39):5632\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR156\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 156\">156<\/a>].<\/p>\n<p>In vitro, several cell function assays showed clear evidence that the surface functionalization of pristine graphene or GO was critical for reducing the strong toxicity effects [<a id=\"ref-link-section-d69921e3532\" title=\"Sasidharan A, Panchakarla LS, Chandran P, Menon D, Nair S, Rao CN, et al. Differential nano-bio interactions and toxicity effects of pristine versus functionalized graphene. Nanoscale. 2011;3(6):2461\u20134.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR91\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 91\">91<\/a>]. PEG-GO, PEI-GO and LA-PEG-GO damaged human lung fibroblast cells less than GO [<a id=\"ref-link-section-d69921e3535\" title=\"Wang A, Pu K, Dong B, Liu Y, Zhang L, Zhang Z, et al. Role of surface charge and oxidative stress in cytotoxicity and genotoxicity of graphene oxide towards human lung fibroblast cells. J Appl Toxicol. 2013;33(10):1156\u201364.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR148\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 148\">148<\/a>]. PEG-GO exhibited no cytotoxicity toward several cell cultures, such as glioblastoma cells (U87MG), breast cancer cells (MCF-7), human ovarian carcinoma cells (OVCAR-3), colon cancer cells (HCT-116), and lymphoblastoid cells (RAJI), at concentrations up to 100\u00a0\u03bcg\/mL [<a id=\"ref-link-section-d69921e3538\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>, <a id=\"ref-link-section-d69921e3541\" title=\"Feng L, Liu Z. Graphene in biomedicine: opportunities and challenges. Nanomed (Lond). 2011;6(2):317\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR157\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 157\">157<\/a>, <a id=\"ref-link-section-d69921e3544\" title=\"Robinson JT, Tabakman SM, Liang Y, Wang H, Casalongue HS, Vinh D, et al. Ultrasmall reduced graphene oxide with high near-infrared absorbance for photothermal therapy. J Am Chem Soc. 2011;133(17):6825\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR158\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 158\">158<\/a>]. GQDs-PEG exhibited very low or no toxicity against lung and cervical cancer cells even at very high concentrations (200\u00a0\u03bcg\/mL) [<a id=\"ref-link-section-d69921e3548\" title=\"Singh N, Manshian B, Jenkins GJS, Griffiths SM, Williams PM, Maffeis TGG, et al. NanoGenotoxicology: The DNA damaging potential of engineered nanomaterials. Biomaterials. 2009;30(s 23\u201324):3891\u2013914.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR159\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 159\">159<\/a>]. However, as a non-biodegradable material with great potential for cellular internalization, further investigation is needed to assess the possible long-term adverse effects of functionalized graphene.<\/p>\n<h3 id=\"Sec23\" class=\"c-article__sub-heading\">Aggregations and sedimentation<\/h3>\n<p>Reportedly, nanomaterials have a propensity to form aggregates rather than individual units, particularly under physiological conditions. GS surfaces allowed fewer RBCs attach comparing to GO, and GS had the lower haemolytic activity for more aqueous aggregations formation. In contrast, the fast sedimentation and aggregate formation of GS greatly inhibited the nutrient availability of human skin fibroblast cells that were grown on the bottom of wells [<a id=\"ref-link-section-d69921e3559\" title=\"Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR106\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 106\">106<\/a>]. Therefore, the aggregations and sedimentation of graphene particles exert varying effects on different cells.<\/p>\n<h3 id=\"Sec24\" class=\"c-article__sub-heading\">Impurities<\/h3>\n<p>Nanomaterial purity is an important consideration because residual, contaminating metals may be responsible for the observed toxicity, rather than the nanomaterial itself, which has resulted in conflicting data on GFNs cytotoxicity [<a id=\"ref-link-section-d69921e3570\" title=\"Nezakati T, Cousins BG, Seifalian AM. Toxicology of chemically modified graphene-based materials for medical application. Arch Toxicol. 2014;88(11):1987\u20132012.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR35\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 35\">35<\/a>, <a id=\"ref-link-section-d69921e3573\" title=\"Yin PT, Shah S, Chhowalla M, Lee KB. Design, synthesis, and characterization of graphene-nanoparticle hybrid materials for bioapplications. Chem Rev. 2015;115(7):2483\u2013531.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR160\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 160\">160<\/a>]. Traditionally prepared GO often contains high levels of Mn<sup>2+<\/sup> and Fe<sup>2+<\/sup>, which are highly mutagenic to cells. The nonspecific release of these ions from traditionally prepared GO might lead to unusually high levels of cytotoxicity and DNA fracturing [<a id=\"ref-link-section-d69921e3580\" title=\"Wu SY, An SS, Hulme J. Current applications of graphene oxide in nanomedicine. Int J Nanomed. 2015;10(Spec Iss):9\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR39\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 39\">39<\/a>]. In particular, Peng et al. [<a id=\"ref-link-section-d69921e3584\" title=\"Peng L, Xu Z, Liu Z, Wei Y, Sun H, Li Z, et al. An iron-based green approach to 1-h production of single-layer graphene oxide. Nat Commun. 2015;6:5716.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR161\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 161\">161<\/a>] produced high-purity GO containing only 0.025\u00a0ppm Mn<sup>2+<\/sup> and 0.13\u00a0ppm Fe<sup>2+<\/sup>, and Hanene et al. [<a id=\"ref-link-section-d69921e3591\" title=\"Ali-Boucetta H, Bitounis D, Raveendran-Nair R, Servant A, Van den Bossche J, Kostarelos K. Purified graphene oxide dispersions lack in vitro cytotoxicity and in vivo pathogenicity. Adv Healthc Mater. 2013;2(3):433\u201341.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR162\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 162\">162<\/a>] invented a new method to prepare high-purity, single-layer GO sheets with good aqueous dispersibility and colloidal stability. GO produced by these new methods did not induce significant cytotoxic responses (at exposure doses up to 100\u00a0\u03bcg\/mL) in vitro, and no obvious inflammatory response or granuloma formation (exposure doses up to 50\u00a0\u03bcg\/animal) were observed in vivo. Therefore, the purity of GFNs deserves attention and is a vital step towards the determination of GFNs involved in bioapplications.<\/p>\n<h3 id=\"Sec25\" class=\"c-article__sub-heading\">Protein corona effect<\/h3>\n<p>Because of the high free surface charge, nanomaterials can easily form \u201ccoronas\u201d with proteins in biological systems [<a id=\"ref-link-section-d69921e3602\" title=\"Dell\u2019Orco D, Lundqvist M, Oslakovic C, Cedervall T, Linse S. Modeling the time evolution of the nanoparticle-protein corona in a body fluid. PLoS One. 2010;5(6):e10949-e.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR163\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 163\">163<\/a>, <a id=\"ref-link-section-d69921e3605\" title=\"Eudald C, Tobias P, Albert D, Gertie Janneke O, Victor P. Time evolution of the nanoparticle protein corona. ACS Nano. 2010;4(7):3623\u201332.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR164\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 164\">164<\/a>]. The protein corona is suggested to affect the circulation, distribution, clearance and toxicity of nanoparticles. Several papers reported that GO forms GO-protein coronas with adsorbed plasma proteins in serum and these GO-protein coronas play an important role in deciding the fate of the GO biokinetic behaviour in vivo. Such GO-protein coronas can regulate the adhesion of GO to endothelial and immune cells through both specific and nonspecific interactions [<a id=\"ref-link-section-d69921e3608\" title=\"Aggarwal P, Hall JB, McLeland CB, Dobrovolskaia MA, McNeil SE. Nanoparticle interaction with plasma proteins as it relates to particle biodistribution, biocompatibility and therapeutic efficacy. Adv Drug Deliv Rev. 2009;61(6):428\u201337.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR165\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 165\">165<\/a>]. Basically, immunoglobulin G and complement proteins in the protein corona help to reorganize nanoparticles in immune cells, causing the particles to be engulfed by the RES, and IgG-coated GO was taken up by either specific or nonspecific interactions with cell membrane receptors [<a id=\"ref-link-section-d69921e3611\" title=\"Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR31\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\">31<\/a>, <a id=\"ref-link-section-d69921e3614\" title=\"Aggarwal P, Hall JB, McLeland CB, Dobrovolskaia MA, McNeil SE. Nanoparticle interaction with plasma proteins as it relates to particle biodistribution, biocompatibility and therapeutic efficacy. Adv Drug Deliv Rev. 2009;61(6):428\u201337.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR165\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 165\">165<\/a>]. However, another study found that GO could not adhere to mucosal epithelial cells directly in the intestinal tract after the filial mice drank an aqueous GO solution because abundant proteins in the milk had adsorbed on the surface of the GO and thus inhibited their direct interaction with the mucosal epithelial cells [<a id=\"ref-link-section-d69921e3618\" title=\"Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR53\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 53\">53<\/a>]. Protein corona mitigated the cytotoxicity of GO by limiting its physical interaction with the cell membrane and reducing the cellular morphological damage in HeLa, THP-1 and A549 cells [<a id=\"ref-link-section-d69921e3621\" title=\"Hu W, Peng C, Lv M, Li X, Zhang Y, Chen N, et al. Protein corona-mediated mitigation of cytotoxicity of graphene oxide. ACS Nano. 2011;5(5):3693\u2013700.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR166\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 166\">166<\/a>\u2013<a id=\"ref-link-section-d69921e3624\" title=\"Cuicui G, Jiangfeng D, Lina Z, Liming W, Ying L, Denghua L, et al. Binding of blood proteins to carbon nanotubes reduces cytotoxicity. Proc Natl Acad Sci U S A. 2011;108(41):16968\u201373.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR168\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 168\">168<\/a>]. The cytotoxic effect was largely reduced when GO was pre-coated with FBS and incubated with cells; nearly\u2009<span class=\"stix\">\u223c<\/span>\u200990 % survival was observed with 100 \u03bcg\/mL FBS-coated GO and 100 % survival with 20 \u03bcg\/mL FBS-coated GO. Similar trends were observed for GO covered by BSA [<a id=\"ref-link-section-d69921e3627\" title=\"Hu W, Peng C, Lv M, Li X, Zhang Y, Chen N, et al. Protein corona-mediated mitigation of cytotoxicity of graphene oxide. ACS Nano. 2011;5(5):3693\u2013700.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR166\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 166\">166<\/a>, <a id=\"ref-link-section-d69921e3630\" title=\"Li Y, Feng L, Shi X, Wang X, Yang Y, Yang K, et al. Surface coating-dependent cytotoxicity and degradation of graphene derivatives: towards the design of non-toxic, degradable nano-graphene. Small. 2014;10(8):1544\u201354.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR169\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 169\">169<\/a>]. Consistently, additional serum could neutralize the toxicity of pristine GO in J774.A1 cells at a dose of 4\u00a0\u03bcg\/mL, which lead to a decrease in cell number of 52.5\u00a0% compared to untreated cells [<a id=\"ref-link-section-d69921e3633\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>].<\/p>\n<p>After reviewing many studies, it can be concluded that the toxicity of graphene is influenced by multiple factors. Those factors combined to largely change the toxicity of GFNs in many cases. Scientific studies often need the clear identification of cause and effect, which should keep only one factor different at a time, so that the effect of that single factor can be determined. But in some papers, several factors influencing GFNs toxicity were studied at the same time, which led to confused results.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Possible toxicity mechanisms of GFNs\">\n<div id=\"Sec26-section\" class=\"c-article-section\">\n<h2 id=\"Sec26\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Possible toxicity mechanisms of GFNs<\/h2>\n<div id=\"Sec26-content\" class=\"c-article-section__content\">\n<p>Although some physicochemical properties and the toxicity of GFNs have been well studied by many scholars, the exact mechanisms underlying the toxicity of GFNs remain obscure. A schematic of the main mechanisms of GFNs cytotoxicity is illustrated in Fig.\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Fig3\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">3<\/a>.<\/p>\n<div id=\"figure-3\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Fig. 3\">\n<figure><figcaption><b id=\"Fig3\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 3<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/3\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig3_HTML.gif?as=webp\" type=\"image\/webp\" \/><img decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig3_HTML.gif\" alt=\"figure3\" aria-describedby=\"Fig3\" \/><\/picture><\/a><\/div>\n<div id=\"figure-3-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>Schematic diagram showed the possible mechanisms of GFNs cytotoxicity. GFNs get into cells through different ways, which induce in ROS generation, LDH and MDA increase, and Ca<sup>2+<\/sup> release. Subsequently, GFNs cause kinds of cell injury, for instance, cell membrane damage, inflammation, DNA damage, mitochondrial disorders, apoptosis or necrosis<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/3\" rel=\"nofollow\" data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" data-track-dest=\"link:Figure3 Full size image\" aria-label=\"Full size image figure 3\">Full size image<\/a><\/div>\n<\/figure>\n<\/div>\n<h3 id=\"Sec27\" class=\"c-article__sub-heading\">Physical destruction<\/h3>\n<p>Graphene is a unique nanomaterial compared with other spherical or one-dimensional nanoparticles due to its two-dimensional structure with sp2-carbons. The physical interaction of graphene nanoparticles with cell membranes is one of the major causes of graphene cytotoxicity [<a id=\"ref-link-section-d69921e3679\" title=\"Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>, <a id=\"ref-link-section-d69921e3682\" title=\"Gurunathan S, Han J, Park JH, Kim JH. An in vitro evaluation of graphene oxide reduced by Ganoderma spp. in human breast cancer cells (MDA-MB-231). Int J Nanomed. 2014;9:1783\u201397.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR170\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 170\">170<\/a>, <a id=\"ref-link-section-d69921e3685\" title=\"Yuan J, Gao H, Ching CB. Comparative protein profile of human hepatoma HepG2 cells treated with graphene and single-walled carbon nanotubes: an iTRAQ-coupled 2D LC-MS\/MS proteome analysis. Toxicol Lett. 2011;207(3):213\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR171\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 171\">171<\/a>]. Graphene has high capability to bind with the \u03b1-helical structures of peptides because of its favourable surface curvature [<a id=\"ref-link-section-d69921e3688\" title=\"Tomasio SM, Walsh TR. Modeling the binding affinity of peptides for graphitic surfaces. Influences of aromatic content and interfacial shape. J Phys Chem C. 2009;113(20):8778\u201385.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR172\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 172\">172<\/a>]. At concentration above 75\u00a0\u03bcg\/mL, pristine graphene largely adhered to the surfaces of RAW 264.7 cells and resulted in abnormal stretching of the cell membrane [<a id=\"ref-link-section-d69921e3691\" title=\"Sasidharan A, Panchakarla LS, Sadanandan AR, Ashokan A, Chandran P, Girish CM, et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. Smal. 2012;8(8):1251\u201363.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR104\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 104\">104<\/a>]. The strong hydrophobic interactions of GFNs with the cell membrane lead to the morphological extension of F-actin filopodial and cytoskeletal dysfunction. Furthermore, the sharpened edges of GNS may act as \u2018blades\u2019, inserting and cutting through bacterial cell membranes [<a id=\"ref-link-section-d69921e3695\" title=\"Akhavan O, Ghaderi E. Toxicity of graphene and graphene oxide nanowalls against bacteria. ACS Nano. 2010;4(10):5731\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR173\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 173\">173<\/a>]. Moreover, GO also damaged the outer membrane of <i>E. coli<\/i> bacteria directly, resulting in the release of intracellular components [<a id=\"ref-link-section-d69921e3701\" title=\"Akhavan O, Ghaderi E. Toxicity of graphene and graphene oxide nanowalls against bacteria. ACS Nano. 2010;4(10):5731\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR173\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 173\">173<\/a>]. However, TEM imaging revealed that pre-coating GO with FBS eliminated the destruction of cell membranes [<a id=\"ref-link-section-d69921e3704\" title=\"Hu W, Peng C, Lv M, Li X, Zhang Y, Chen N, et al. Protein corona-mediated mitigation of cytotoxicity of graphene oxide. ACS Nano. 2011;5(5):3693\u2013700.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR166\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 166\">166<\/a>].<\/p>\n<h3 id=\"Sec28\" class=\"c-article__sub-heading\">ROS production leading to oxidative stress<\/h3>\n<p>Oxidative stress arises when increasing levels of ROS overwhelm the activity of antioxidant enzymes, including catalase, SOD, or glutathione peroxidase (GSH-PX) [<a id=\"ref-link-section-d69921e3715\" title=\"Burton GJ, Jauniaux E. Oxidative stress. Best Pract Res Clin Obstet Gynaecol. 2011;25:287\u201399.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR174\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 174\">174<\/a>]. ROS act as second messengers in many intracellular signalling cascades and lead to cellular macromolecular damage, such as membrane lipid breakdown, DNA fragmentation, protein denaturation and mitochondrial dysfunction, which greatly influence cell metabolism and signalling [<a id=\"ref-link-section-d69921e3718\" title=\"Waiwijit U, Kandhavivorn W, Oonkhanond B, Lomas T, Phokaratkul D, Wisitsoraat A, et al. Cytotoxicity assessment of MDA-MB-231 breast cancer cells on screen-printed graphene-carbon paste substrate. Colloids Surf B Biointerf. 2014;113:190\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR175\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 175\">175<\/a>\u2013<a id=\"ref-link-section-d69921e3721\" title=\"Chen M, Yin J, Liang Y, Yuan S, Wang F, Song M, et al. Oxidative stress and immunotoxicity induced by graphene oxide in zebrafish. Aqua Toxicol. 2016;174(1879\u20131514 (Electronic)):54\u201360.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR177\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 177\">177<\/a>]. The interactions of GO with cells can lead to excessive ROS generation, which is the first step in the mechanisms of carcinogenesis, ageing, and mutagenesis [<a id=\"ref-link-section-d69921e3724\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>, <a id=\"ref-link-section-d69921e3727\" title=\"De Marzi L, Ottaviano L, Perrozzi F, Nardone M, Santucci S, De Lapuente J, et al. Flake size-dependent cyto and genotoxic evaluation of graphene oxide on in vitro A549, CaCo2 and vero cell lines. J Biol Regul Homeost Agents. 2014;28(2):281\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR122\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 122\">122<\/a>]. Oxidative stress had a significant role in GO-induced acute lung injury [<a id=\"ref-link-section-d69921e3731\" title=\"Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a>], and the inflammatory responses caused by oxidative stress often emerged upon exposure to GFNs [<a id=\"ref-link-section-d69921e3734\" title=\"Patlolla AK, Randolph J, Kumari SA, Tchounwou PB. Toxicity evaluation of graphene oxidein kidneys of Sprague\u2013Dawley rats. Int J Environ Res Public Health. 2016;13(1660\u20134601 (Electronic)):380.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR133\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 133\">133<\/a>, <a id=\"ref-link-section-d69921e3737\" title=\"Chen M, Yin J, Liang Y, Yuan S, Wang F, Song M, et al. Oxidative stress and immunotoxicity induced by graphene oxide in zebrafish. Aqua Toxicol. 2016;174(1879\u20131514 (Electronic)):54\u201360.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR177\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 177\">177<\/a>, <a id=\"ref-link-section-d69921e3740\" title=\"Meng C, Zhi X, Li C, Li C, Chen Z, Qiu X, et al. Graphene oxides decorated with carnosine as an adjuvant to modulate innate immune and improve adaptive immunity in vivo. ACS Nano. 2016;10(1936-086X (Electronic)):2203\u201313.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR178\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 178\">178<\/a>]. The activity of SOD and GSH-PX decreased after exposed to GO in a time- and dosage-dependent manner [<a id=\"ref-link-section-d69921e3743\" title=\"Zhang Y, Ali SF, Dervishi E, Xu Y, Li Z, Casciano D, et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. ACS Nano. 2010;4(6):3181\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR82\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 82\">82<\/a>, <a id=\"ref-link-section-d69921e3746\" title=\"Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR106\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 106\">106<\/a>, <a id=\"ref-link-section-d69921e3750\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>]. Similarly, oxidative stress was the key cause of apoptosis and DNA damage after HLF cells were exposed to GO [<a id=\"ref-link-section-d69921e3753\" title=\"Wang A, Pu K, Dong B, Liu Y, Zhang L, Zhang Z, et al. Role of surface charge and oxidative stress in cytotoxicity and genotoxicity of graphene oxide towards human lung fibroblast cells. J Appl Toxicol. 2013;33(10):1156\u201364.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR148\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 148\">148<\/a>]. Both the mitogen-activated protein kinase (MAPK) (JNK, ERK and p38) and TGF-beta-related signalling pathways were triggered by ROS generation in pristine graphene-treated cells, accompanied by the activation of Bim and Bax, which are two pro-apoptotic members of the Bcl-2 protein family. As a result, caspase-3 and its downstream effector proteins such as PARP were activated, and apoptosis was initiated [<a id=\"ref-link-section-d69921e3756\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>, <a id=\"ref-link-section-d69921e3759\" title=\"Ravichandran P, Baluchamy S, Sadanandan B, Gopikrishnan R, Biradar S, Ramesh V, et al. Multiwalled carbon nanotubes activate NF-\u03baB and AP-1 signaling pathways to induce apoptosis in rat lung epithelial cells. Apoptosis. 2010;15(12):1507\u201316.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR179\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 179\">179<\/a>]. Detailed information regarding the MAPK-, TGF-\u03b2- and TNF-\u03b1-related signalling pathways, which induce inflammation, apoptosis and necrosis, are summarized in Fig.\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Fig4\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">4<\/a>.<\/p>\n<div id=\"figure-4\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Fig. 4\">\n<figure><figcaption><b id=\"Fig4\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 4<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/4\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig4_HTML.gif?as=webp\" type=\"image\/webp\" \/><img decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig4_HTML.gif\" alt=\"figure4\" aria-describedby=\"Fig4\" \/><\/picture><\/a><\/div>\n<div id=\"figure-4-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>Schematic diagram of MAPKs, TGF-beta and TNF-\u03b1 dependent pathways involved in GFNs toxicity. ROS was the main factors activating the MAPKs and TGF-beta signaling pathways to lead to the activation of Bim and Bax, triggering the cascade of caspases and JNK pathway. The activation of caspase 3 and RIP1 resulted in apoptosis and necrosis finally<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/4\" rel=\"nofollow\" data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" data-track-dest=\"link:Figure4 Full size image\" aria-label=\"Full size image figure 4\">Full size image<\/a><\/div>\n<\/figure>\n<\/div>\n<h3 id=\"Sec29\" class=\"c-article__sub-heading\">Mitochondrial damage<\/h3>\n<p>Mitochondria are energy production centres involved in various signalling pathways in cells and are also a key point of apoptotic regulation [<a id=\"ref-link-section-d69921e3791\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>]. After exposure to GO and carboxyl graphene (GXYG), the mitochondrial membrane was depolarized, and the amount of mitochondria decreased in HepG2 cells [<a id=\"ref-link-section-d69921e3794\" title=\"Lammel T, Boisseaux P, Fernandez-Cruz ML, Navas JM. Internalization and cytotoxicity of graphene oxide and carboxyl graphene nanoplatelets in the human hepatocellular carcinoma cell line Hep G2. Part Fibre Toxicol. 2013;10:27.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR180\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 180\">180<\/a>]. Exposure to GFNs resulted in significantly increased coupled and uncoupled mitochondrial oxygen consumption, dissipation of the mitochondrial membrane potential, and eventual triggering of apoptosis by activating the mitochondrial pathway [<a id=\"ref-link-section-d69921e3797\" title=\"Gurunathan S, Han JW, Eppakayala V, Kim JH. Green synthesis of graphene and its cytotoxic effects in human breast cancer cells. Int J Nanomedicine. 2013;8:1015\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR181\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 181\">181<\/a>]. For instance, GO increased the activity of mitochondrial electron transport complexes I\/III and the supply of electrons to site I\/II of the electron transport chain, accelerating the generation of ROS during mitochondrial respiration in MHS cells [<a id=\"ref-link-section-d69921e3800\" title=\"Duch MC, Budinger GR, Liang YT, Soberanes S, Urich D, Chiarella SE, et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. Nano Lett. 2011;11(12):5201\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR99\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 99\">99<\/a>]. The formation of \u2022OH mediated by GO and the cytochrome-c\/H<sub>2<\/sub>O<sub>2<\/sub> electron-transfer system could enhance oxidative and thermal stress to impair the mitochondrial respiration system and eventually result in dramatic toxicity [<a id=\"ref-link-section-d69921e3808\" title=\"Zhang W, Wang C, Li Z, Lu Z, Li Y, Yin JJ, et al. Unraveling stress-induced toxicity properties of graphene oxide and the underlying mechanism. Adv Mater. 2012;24(39):5391\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR151\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 151\">151<\/a>]. Additionally, the oxygen moieties on GO might accept electrons from cellular redox proteins, supporting the redox cycling of cytochrome c and electron transport proteins, and cytochromes MtrA, MtrB, and MtrC\/OmcA might be involved in transferring electrons to GO [<a id=\"ref-link-section-d69921e3811\" title=\"Salas EC, Sun Z, Luttge A, Tour JM. Reduction of graphene oxide via bacterial respiration. ACS Nano. 2010;4(8):4852\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR182\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 182\">182<\/a>]. Therefore, except for the plasma membrane damage and oxidative stress induction, GFNs can cause apoptosis and\/or cell necrosis by direct influencing cell mitochondrial activity [<a id=\"ref-link-section-d69921e3814\" title=\"Shekaramiz E. Immobilization of mitochondria on graphene. Dissert Theses Gradworks. 2012;217(1):120\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR183\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 183\">183<\/a>, <a id=\"ref-link-section-d69921e3817\" title=\"Park EJ, Lee GH, Han BS, Lee BS, Lee S, Cho MH, et al. Toxic response of graphene nanoplatelets in vivo and in vitro. Arch Toxicol. 2015;89(9):1557\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR184\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 184\">184<\/a>].<\/p>\n<h3 id=\"Sec30\" class=\"c-article__sub-heading\">DNA damage<\/h3>\n<p>Due to its small size, high surface area and surface charge, GO may possess significant genotoxic properties and cause severe DNA damage, for example, chromosomal fragmentation, DNA strand breakages, point mutations, and oxidative DNA adducts and alterations [<a id=\"ref-link-section-d69921e3829\" title=\"Wang D, Zhu L, Chen JF, Dai L. Can graphene quantum dots cause DNA damage in cells? Nanoscale. 2015;7(21):9894\u2013901.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR87\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 87\">87<\/a>, <a id=\"ref-link-section-d69921e3832\" title=\"De Marzi L, Ottaviano L, Perrozzi F, Nardone M, Santucci S, De Lapuente J, et al. Flake size-dependent cyto and genotoxic evaluation of graphene oxide on in vitro A549, CaCo2 and vero cell lines. J Biol Regul Homeost Agents. 2014;28(2):281\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR122\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 122\">122<\/a>, <a id=\"ref-link-section-d69921e3835\" title=\"Chatterjee N, Yang J, Choi J. Differential genotoxic and epigenotoxic effects of graphene family nanomaterials (GFNs) in human bronchial epithelial cells. Mutat Res Gen Tox En. 2016;798(1879\u20133592 (Electronic)):1\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR185\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 185\">185<\/a>, <a id=\"ref-link-section-d69921e3838\" title=\"Ivask A, Voelcker NH, Seabrook SA, Hor M, Kirby JK, Fenech M, et al. DNA melting and genotoxicity induced by silver nanoparticles and graphene. Chem Res Toxicol. 2015;28(1520\u20135010 (Electronic)):1023\u201335.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR186\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 186\">186<\/a>]. Mutagenesis was observed in mice after intravenous injection of GO at a dose of 20\u00a0mg\/kg compared with cyclophosphamide (50\u00a0mg\/kg), a classic mutagen [<a id=\"ref-link-section-d69921e3841\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>]. Even if GO cannot enter into the nucleus of a cell, it may still interact with DNA during mitosis when the nuclear membrane breaks down, which increases the opportunity for DNA aberrations [<a id=\"ref-link-section-d69921e3845\" title=\"Wang D, Zhu L, Chen JF, Dai L. Can graphene quantum dots cause DNA damage in cells? Nanoscale. 2015;7(21):9894\u2013901.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR87\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 87\">87<\/a>, <a id=\"ref-link-section-d69921e3848\" title=\"Ren H, Wang C, Zhang J, Zhou X, Xu D, Zheng J, et al. DNA cleavage system of nanosized graphene oxide sheets and copper ions. ACS Nano. 2010;4(12):7169\u201374.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR147\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 147\">147<\/a>, <a id=\"ref-link-section-d69921e3851\" title=\"Magdolenova Z, Collins A, Kumar A, Dhawan A, Stone V, Dusinska M. Mechanisms of genotoxicity. A review of in vitro and in vivo studies with engineered nanoparticles. Nanotoxicology. 2014;8(3):233\u201378.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR187\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 187\">187<\/a>, <a id=\"ref-link-section-d69921e3854\" title=\"Golbamaki N, Rasulev B, Cassano A, Marchese Robinson RL, Benfenati E, Leszczynski J, et al. Genotoxicity of metal oxide nanomaterials: review of recent data and discussion of possible mechanisms. Nanoscale. 2015;7(6):2154\u201398.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR188\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 188\">188<\/a>]. The \u03c0 stacking interaction between the graphene carbon rings and the hydrophobic DNA base pairs can make a DNA segment \u2018stand up\u2019 or \u2018lay on\u2019 the surface of graphene with its helical axis perpendicular or parallel, respectively. The intermolecular forces severely deform the end base pairs of DNA, which potentially increases the genotoxicity [<a id=\"ref-link-section-d69921e3857\" title=\"Zhao X. Self-assembly of DNA segments on graphene and carbon nanotube arrays in aqueous solution: A molecular simulation study. J Phys Chem C. 2011;115(14):6181\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR189\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 189\">189<\/a>]. GO may also induce chromosomal fragmentation, DNA adducts and point mutations by promoting oxidative stress or triggering inflammation through the activation of intracellular signalling pathways such as MAPK, TGF-\u03b2 and NF-\u03baB [<a id=\"ref-link-section-d69921e3860\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>, <a id=\"ref-link-section-d69921e3864\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>, <a id=\"ref-link-section-d69921e3867\" title=\"Jarosz A, Skoda M, Dudek I, Szukiewicz D. Oxidative stress and mitochondrial activation as the main mechanisms underlying graphene toxicity against human cancer cells. Oxid Med Cell Longev. 2016;2016:5851035.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR146\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 146\">146<\/a>]. Graphene and rGO can also elevate the expression of p53, Rad51, and MOGG1-1, which reflect chromosomal damage, and decrease the expression of CDK2 and CDK4 by arresting the cell cycle transition from the G1 to the S phase in various cell lines [<a id=\"ref-link-section-d69921e3870\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>]. DNA damage can not only initiate cancer development but also possibly threaten the health of the next generation if the mutagenic potential of GO arises in reproductive cells, which impacts fertility and the health of offspring [<a id=\"ref-link-section-d69921e3873\" title=\"Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR112\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 112\">112<\/a>, <a id=\"ref-link-section-d69921e3876\" title=\"Ciccia A, Elledge SJ. The DNA damage response: making it safe to play with knives. Mol Cell. 2010;40(2):179\u2013204.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR190\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 190\">190<\/a>].<\/p>\n<h3 id=\"Sec31\" class=\"c-article__sub-heading\">Inflammatory response<\/h3>\n<p>GFNs can cause a significant inflammatory response including inflammatory cell infiltration, pulmonary edema and granuloma formation at high doses via intratracheally instillation or intravenous administration [<a id=\"ref-link-section-d69921e3887\" title=\"Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a>, <a id=\"ref-link-section-d69921e3890\" title=\"Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR49\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 49\">49<\/a>]. Platelets are the important components in clot formation to attack pathogens and particulate matter during the inflammatory response, and GO could directly activate platelet-rich thrombi formation to occlude lung vessels after intravenous injection [<a id=\"ref-link-section-d69921e3893\" title=\"Singh SK, Singh MK, Kulkarni PP, Sonkar VK, Gracio JJ, Dash D. Amine-modified graphene: thrombo-protective safer alternative to graphene oxide for biomedical applications. ACS Nano. 2012;6(3):2731\u201340.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR98\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 98\">98<\/a>, <a id=\"ref-link-section-d69921e3896\" title=\"Satoshi F, Macconmara MP, Maung AA, Yan Z, Mannick JA, Lederer JA, et al. Platelet depletion in mice increases mortality after thermal injury. Blood. 2006;107(11):4399\u2013406.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR191\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 191\">191<\/a>]. A strong inflammatory response was induced by subcutaneously injection with GO for 21\u00a0days, along with the secretion of key cytokines, including IL-6, IL-12, TNF-\u03b1, MCP-1, and IFN-g [<a id=\"ref-link-section-d69921e3899\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>, <a id=\"ref-link-section-d69921e3903\" title=\"Chen GY, Yang HJ, Lu CH, Chao YC, Hwang SM, Chen CL, et al. Simultaneous induction of autophagy and toll-like receptor signaling pathways by graphene oxide. Biomaterials. 2012;33(27):6559\u201369.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR192\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 192\">192<\/a>]. GFNs can trigger an inflammatory response and tissue injury by releasing cytokines and chemokines that lead to the recruitment of circulating monocytes and stimulating the secretion of Th1\/Th2 cytokines and chemokines [<a id=\"ref-link-section-d69921e3906\" title=\"Reshma SC, Syama S, Mohanan PV. Nano-biointeractions of PEGylated and bare reduced graphene oxide on lung alveolar epithelial cells: A comparative in vitro study. Colloids Surf B Biointerf. 2016;140(1873\u20134367 (Electronic)):104\u201316.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR124\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 124\">124<\/a>, <a id=\"ref-link-section-d69921e3909\" title=\"Zhou H, Zhao K, Li W, Yang N, Liu Y, Chen C, et al. The interactions between pristine graphene and macrophages and the production of cytokines\/chemokines via TLR- and NF-kappaB-related signaling pathways. Biomaterials. 2012;33(29):6933\u201342.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR193\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 193\">193<\/a>]. Additionally, pristine graphene [<a id=\"ref-link-section-d69921e3912\" title=\"Zhou H, Zhao K, Li W, Yang N, Liu Y, Chen C, et al. The interactions between pristine graphene and macrophages and the production of cytokines\/chemokines via TLR- and NF-kappaB-related signaling pathways. Biomaterials. 2012;33(29):6933\u201342.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR193\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 193\">193<\/a>] and rGO [<a id=\"ref-link-section-d69921e3915\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>] evoke an inflammatory response by binding to toll-like receptors (TLRs) and activating the NF-\u03baB signalling pathway in cells. The NF-\u03baB signalling cascade is triggered by TLRs and pro-inflammatory cytokines such as IL-1 and TNF-\u03b1. Upon activation, NF-\u03baB shifts from the cytoplasm to the nucleus, facilitating the binding of degrading I\u03baB and acting as a transcription factor to synthesize numerous pro-inflammatory cytokines [<a id=\"ref-link-section-d69921e3918\" title=\"Lawrence T. The nuclear factor NF-kappaB pathway in inflammation. Cold Spring Harb Perspect Biol. 2009;1(1943\u20130264 (Electronic)):a001651.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR194\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 194\">194<\/a>]. A schematic of the signalling pathway of TLR4 and TLR9 activated by GFNs is shown in Fig.\u00a0<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#Fig5\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">5<\/a>.<\/p>\n<div id=\"figure-5\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Fig. 5\">\n<figure><figcaption><b id=\"Fig5\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 5<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/5\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig5_HTML.gif?as=webp\" type=\"image\/webp\" \/><img decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1186%2Fs12989-016-0168-y\/MediaObjects\/12989_2016_168_Fig5_HTML.gif\" alt=\"figure5\" aria-describedby=\"Fig5\" \/><\/picture><\/a><\/div>\n<div id=\"figure-5-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>A schematic diagram elucidating signalling pathway of TLR4 and TLR9 responsible for GFNs-induced cytotoxicity. GFNs can be recognized by TLRs, thus activate IKK and I\u03baB by a MyD88-dependent mechanism, resulting in the release of NF-\u03baB subunits and initiating the translocation into the nucleus. Thus, pro-inflammatory factors were transcribed and secreted out of nucleus, modulating the immune responses initiating programmed autophagy, apoptosis and necrosis<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a class=\"c-article__pill-button\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/figures\/5\" rel=\"nofollow\" data-test=\"article-link\" data-track=\"click\" data-track-label=\"button\" data-track-action=\"view figure\" data-track-dest=\"link:Figure5 Full size image\" aria-label=\"Full size image figure 5\">Full size image<\/a><\/div>\n<\/figure>\n<\/div>\n<h3 id=\"Sec32\" class=\"c-article__sub-heading\">Apoptosis<\/h3>\n<p>Apoptosis is defined as the self-destruction of a cell regulated by genes through complicated programmes [<a id=\"ref-link-section-d69921e3951\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>, <a id=\"ref-link-section-d69921e3954\" title=\"Hengartner MO. The biochemistry of apoptosis. Nature. 2000;407(6805):770\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR195\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 195\">195<\/a>]. GO and rGO caused apoptosis and inflammation in mice lungs after inhalation [<a id=\"ref-link-section-d69921e3957\" title=\"Duch MC, Budinger GR, Liang YT, Soberanes S, Urich D, Chiarella SE, et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. Nano Lett. 2011;11(12):5201\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR99\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 99\">99<\/a>], and GFNs also had pro-apoptotic effects in cells [<a id=\"ref-link-section-d69921e3960\" title=\"Jaworski S, Sawosz E, Grodzik M, Winnicka A, Prasek M, Wierzbicki M, et al. In vitro evaluation of the effects of graphene platelets on glioblastoma multiforme cells. Int J Nanomed. 2013;8:413\u201320.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR111\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 111\">111<\/a>, <a id=\"ref-link-section-d69921e3963\" title=\"Vallabani NV, Mittal S, Shukla RK, Pandey AK, Dhakate SR, Pasricha R, et al. Toxicity of graphene in normal human lung cells (BEAS-2B). J Biomed Nanotechnol. 2011;7(1):106\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR113\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 113\">113<\/a>, <a id=\"ref-link-section-d69921e3967\" title=\"Reshma SC, Syama S, Mohanan PV. Nano-biointeractions of PEGylated and bare reduced graphene oxide on lung alveolar epithelial cells: A comparative in vitro study. Colloids Surf B Biointerf. 2016;140(1873\u20134367 (Electronic)):104\u201316.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR124\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 124\">124<\/a>, <a id=\"ref-link-section-d69921e3970\" title=\"Matesanz MC, Vila M, Feito MJ, Linares J, Goncalves G, Vallet-Regi M, et al. The effects of graphene oxide nanosheets localized on F-actin filaments on cell-cycle alterations. Biomaterials. 2013;34(5):1562\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR196\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 196\">196<\/a>]. Additionally, graphene and GO physically damaged cell membranes [<a id=\"ref-link-section-d69921e3973\" title=\"Hu W, Peng C, Lv M, Li X, Zhang Y, Chen N, et al. Protein corona-mediated mitigation of cytotoxicity of graphene oxide. ACS Nano. 2011;5(5):3693\u2013700.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR166\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 166\">166<\/a>], increased the permeabilization of the outer mitochondrial membrane and changed the mitochondrial membrane potential; the increased ROS triggered the MAPK and TGF-\u03b2 signalling pathways and activated caspase-3 via mitochondrial-dependent apoptotic cascades, prompting the execution of apoptosis [<a id=\"ref-link-section-d69921e3976\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>, <a id=\"ref-link-section-d69921e3979\" title=\"Duch MC, Budinger GR, Liang YT, Soberanes S, Urich D, Chiarella SE, et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. Nano Lett. 2011;11(12):5201\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR99\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 99\">99<\/a>]. Similarly, rGO caused apoptosis at a low dose and an early time point, triggered by the death-receptor and canonical mitochondrial pathway [<a id=\"ref-link-section-d69921e3982\" title=\"Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR110\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 110\">110<\/a>]. Another study showed three different apoptosis pathways by GFNs: GO led to ROS-dependent apoptosis through direct interaction with protein receptors and subsequent activation of the B-cell lymphoma-2 (Bcl-2) pathway; GO-COOH transmitted a passive apoptosis signal to nuclear DNA by binding to protein receptors and activating a ROS-independent pathway; However, GO-PEI severely damaged the membranes of T lymphocytes to trigger apoptosis [<a id=\"ref-link-section-d69921e3986\" title=\"Ding Z, Zhang Z, Ma H, Chen Y. In vitro hemocompatibility and toxic mechanism of graphene oxide on human peripheral blood T lymphocytes and serum albumin. ACS Appl Mater Interf. 2014;6(22):19797\u2013807.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR105\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 105\">105<\/a>, <a id=\"ref-link-section-d69921e3989\" title=\"Yao Y, Costa M. Genetic and epigenetic effects of nanoparticles. J Mol Genet Med. 2013;7:86.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR197\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 197\">197<\/a>].<\/p>\n<h3 id=\"Sec33\" class=\"c-article__sub-heading\">Autophagy<\/h3>\n<p>Autophagy is the process of self-degradation of cellular components and recently recognized as non-apoptotic cell death [<a id=\"ref-link-section-d69921e4000\" title=\"Stern ST, Adiseshaiah PP, Crist RM. Autophagy and lysosomal dysfunction as emerging mechanisms of nanomaterial toxicity. Part Fibre Toxicol. 2012;9(1743\u20138977 (Electronic)):1.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR198\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 198\">198<\/a>\u2013<a id=\"ref-link-section-d69921e4003\" title=\"Patel AS, Lin L, Geyer A, Haspel JA, An CH, Cao J, et al. Autophagy in idiopathic pulmonary fibrosis. PLoS One. 2012;7(1932\u20136203 (Electronic)):e41394.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR200\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 200\">200<\/a>]. Autophagy activation requires autophagosome formation containing Beclin 1, multiple autophagy-related proteins (ATG), microtubule-associated protein light chain 3 (LC3) and p62 [<a id=\"ref-link-section-d69921e4006\" title=\"Levine B, Mizushima N, Virgin HW. Autophagy in immunity and inflammation. Nature. 2011;469(7330):323\u201335.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR201\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 201\">201<\/a>]. Autophagosome accumulation is associated with exposure to various nanoparticles [<a id=\"ref-link-section-d69921e4009\" title=\"Kenzaoui BH, Bernasconi CC, Guney-Ayra S, Juillerat-Jeanneret L. Induction of oxidative stress, lysosome activation and autophagy by nanoparticles in human brain-derived endothelial cells. Biochem J. 2012;441(1470\u20138728 (Electronic)):813\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR202\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 202\">202<\/a>\u2013<a id=\"ref-link-section-d69921e4012\" title=\"Chen GY, Meng CL, Lin KC, Tuan HY, Yang HJ, Chen CL, et al. Graphene oxide as a chemosensitizer: Diverted autophagic flux, enhanced nuclear import, elevated necrosis and improved antitumor effects. Biomaterials. 2015;40:12\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR205\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 205\">205<\/a>], and autophagy can remove extracellular organisms and destruct the organisms in the cytosol [<a id=\"ref-link-section-d69921e4016\" title=\"Chen GY, Chen CL, Tuan HY, Yuan PX, Li KC, Yang HJ, et al. Graphene oxide triggers toll-like receptors\/autophagy responses in vitro and inhibits tumor growth in vivo. Adv Healthc Mater. 2014;3(9):1486\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR206\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 206\">206<\/a>]. GO and GQDs was shown to induce autophagosome accumulation and the conversion of LC3-I to LC3-II; inhibit the degradation of the autophagic substrate p62 protein [<a id=\"ref-link-section-d69921e4019\" title=\"Wan B, Wang ZX, Lv QY, Dong PX, Zhao LX, Yang Y, et al. Single-walled carbon nanotubes and graphene oxides induce autophagosome accumulation and lysosome impairment in primarily cultured murine peritoneal macrophages. Toxicol Lett. 2013;221(1879\u20133169 (Electronic)):118\u201327.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR207\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 207\">207<\/a>, <a id=\"ref-link-section-d69921e4022\" title=\"Markovic ZM, Ristic BZ, Arsikin KM, Klisic DG, Harhaji-Trajkovic LM, Todorovic-Markovic BM, et al. Graphene quantum dots as autophagy-inducing photodynamic agents. Biomaterials. 2012;33(29):7084\u201392.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR208\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 208\">208<\/a>]. Furthermore, GO can simultaneously trigger TLR4 and TLR9 responses in macrophages [<a id=\"ref-link-section-d69921e4025\" title=\"Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR34\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\">34<\/a>, <a id=\"ref-link-section-d69921e4028\" title=\"Chen GY, Yang HJ, Lu CH, Chao YC, Hwang SM, Chen CL, et al. Simultaneous induction of autophagy and toll-like receptor signaling pathways by graphene oxide. Biomaterials. 2012;33(27):6559\u201369.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR192\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 192\">192<\/a>] and colon cancer cells CT26 [<a id=\"ref-link-section-d69921e4031\" title=\"Chen GY, Chen CL, Tuan HY, Yuan PX, Li KC, Yang HJ, et al. Graphene oxide triggers toll-like receptors\/autophagy responses in vitro and inhibits tumor growth in vivo. Adv Healthc Mater. 2014;3(9):1486\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR206\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 206\">206<\/a>]. The autophagy pathway is linked to phagocytosis by TLR signalling in macrophages [<a id=\"ref-link-section-d69921e4035\" title=\"Chen GY, Chen CL, Tuan HY, Yuan PX, Li KC, Yang HJ, et al. Graphene oxide triggers toll-like receptors\/autophagy responses in vitro and inhibits tumor growth in vivo. Adv Healthc Mater. 2014;3(9):1486\u201395.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR206\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 206\">206<\/a>, <a id=\"ref-link-section-d69921e4038\" title=\"Sanjuan MA, Dillon CP, Tait SW, Moshiach S, Dorsey F, Connell S, et al. Toll-like receptor signalling in macrophages links the autophagy pathway to phagocytosis. Nature. 2007;450(7173):1253\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR209\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 209\">209<\/a>].<\/p>\n<h3 id=\"Sec34\" class=\"c-article__sub-heading\">Necrosis<\/h3>\n<p>Necrosis is an alternate form of cell death induced by inflammatory responses or cellular injury. The exposure of cells to pristine graphene causes apoptosis and necrosis at high doses (50\u00a0mg\/mL) [<a id=\"ref-link-section-d69921e4049\" title=\"Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR83\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 83\">83<\/a>]. Reportedly, LDH leakage and the opening of the mitochondrial permeability transition pore, induced by elevated level of cytoplasmic Ca<sup>2+<\/sup>, lead to apoptosis\/necrosis [<a id=\"ref-link-section-d69921e4054\" title=\"Sasidharan A, Swaroop S, Chandran P, Nair S, Koyakutty M. Cellular and molecular mechanistic insight into the DNA-damaging potential of few-layer graphene in human primary endothelial cells. Nanomed. 2016;12(1549\u20139642 (Electronic)):1347\u201355.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR210\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 210\">210<\/a>]. GO treatment was revealed to induce macrophagic necrosis by activating TLR4 signalling and subsequently partly triggering autocrine TNF-\u03b1 production [<a id=\"ref-link-section-d69921e4057\" title=\"Qu G, Liu S, Zhang S, Wang L, Wang X, Sun B, et al. Graphene oxide induces toll-like receptor 4 (TLR4)-dependent necrosis in macrophages. ACS Nano. 2013;7(7):5732\u201345.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR93\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 93\">93<\/a>]. GO combined with CDDP (GO\/CDDP) triggered necrosis by decreasing RIP1 and increasing RIP3 proteins, accompanied with the release of high mobility group B1 (HMGB1) into the cytosol from the nucleus and out of CT26 cells [<a id=\"ref-link-section-d69921e4060\" title=\"Chen GY, Meng CL, Lin KC, Tuan HY, Yang HJ, Chen CL, et al. Graphene oxide as a chemosensitizer: Diverted autophagic flux, enhanced nuclear import, elevated necrosis and improved antitumor effects. Biomaterials. 2015;40:12\u201322.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR205\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 205\">205<\/a>, <a id=\"ref-link-section-d69921e4064\" title=\"Yang H, Rivera Z, Jube S, Nasu M, Bertino P, Goparaju C, et al. Programmed necrosis induced by asbestos in human mesothelial cells causes high-mobility group box 1 protein release and resultant inflammation. Proc Natl Acad Sci U S A. 2010;107(1091\u20136490 (Electronic)):12611\u20136.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR211\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 211\">211<\/a>, <a id=\"ref-link-section-d69921e4067\" title=\"Raucci A, Palumbo R, Bianchi ME. HMGB1: a signal of necrosis. Autoimmunity. 2007;40(4):285\u20139.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR212\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 212\">212<\/a>].<\/p>\n<h3 id=\"Sec35\" class=\"c-article__sub-heading\">Epigenetic changes<\/h3>\n<p>Epigenetics involve DNA methylation, genomic imprinting, maternal effects, gene silencing, and RNA editing [<a id=\"ref-link-section-d69921e4078\" title=\"Smith ZD, Meissner A. DNA methylation: roles in mammalian development. Nat Rev Genet. 2013;14(3):204\u201320.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR213\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 213\">213<\/a>\u2013<a id=\"ref-link-section-d69921e4081\" title=\"Nishikura K. Functions and regulation of RNA editing by ADAR deaminases. Annu Rev Biochem. 2010;79(79):321\u201349.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR215\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 215\">215<\/a>]. DNA methylation, which is one of the best-studied epigenetic modifications, includes phosphorylation, ubiquitination, and ATP-ribosylation and can lead to chromatin remodelling [<a id=\"ref-link-section-d69921e4084\" title=\"Yao Y, Costa M. Genetic and epigenetic effects of nanoparticles. J Mol Genet Med. 2013;7:86.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR197\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 197\">197<\/a>, <a id=\"ref-link-section-d69921e4087\" title=\"Dubey P, Matai I, Kumar SU, Sachdev A, Bhushan B, Gopinath P. Perturbation of cellular mechanistic system by silver nanoparticle toxicity: Cytotoxic, genotoxic and epigenetic potentials. Adv Colloid Interf Sci. 2015;221:4\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR216\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 216\">216<\/a>, <a id=\"ref-link-section-d69921e4090\" title=\"Collins AR, Ferguson LR. DNA repair as a biomarker. Mutat Res. 2012;736(1\u20132):2\u20134.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR217\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 217\">217<\/a>]. A recently paper reported that SL-GO\/FL-GO exposure resulted in global DNA hypermethylation through upregulating DNMT3B and MBD1 genes; GNP treatment caused hypomethylation by decreasing the expression of DNMT3B and MBD1 genes [<a id=\"ref-link-section-d69921e4094\" title=\"Dubey P, Matai I, Kumar SU, Sachdev A, Bhushan B, Gopinath P. Perturbation of cellular mechanistic system by silver nanoparticle toxicity: Cytotoxic, genotoxic and epigenetic potentials. Adv Colloid Interf Sci. 2015;221:4\u201321.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR216\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 216\">216<\/a>]. GO could activate the miRNA-360 regulation pathway to suppress the DNA damage-apoptosis signalling cascade by affecting the component of CEP-1 [<a id=\"ref-link-section-d69921e4097\" title=\"Zhao Y, Wu Q, Wang D. An epigenetic signal encoded protection mechanism is activated by graphene oxide to inhibit its induced reproductive toxicity in Caenorhabditis elegans. Biomaterials. 2016;79(1878\u20135905 (Electronic)):15\u201324.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR218\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 218\">218<\/a>]. Taken together, these data suggest that GFNs could cause subtle changes in gene expression programming by modulating epigenetic changes. However, studies of GFNs-induced epigenetic changes are few, and the epigenetic mechanism caused by GFNs exposure is not fully understood.<\/p>\n<p>To conclude, many studies have discussed representative mechanisms of GFNs toxicity involving four signalling pathways: TLRs, TGF-\u03b2, TNF-\u03b1 and MAPKs. These four signalling pathways are correlative and cross-modulatory, making the inflammatory response, autophagy, apoptosis and other mechanisms independent and yet connected to each other. Additionally, oxidative stress appears to play the most important role in activating these signalling pathways. It has been reported that there are intersections of apoptosis, autophagy and necrosis in the studies of other nanomaterials toxicity, they inhibit or promote mutually in some conditions. However, the signalling pathways of GFNs toxicity investigated in papers to date are only a small part of an intricate web, and the network of signalling pathways needs to be explored in detail in the future.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Data gaps and future studies\">\n<div id=\"Sec36-section\" class=\"c-article-section\">\n<h2 id=\"Sec36\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Data gaps and future studies<\/h2>\n<div id=\"Sec36-content\" class=\"c-article-section__content\">\n<p>Currently, the literature is insufficient to draw conclusions about the potential hazards of GFNs. Two opposite opinions have begun to emerge: some researchers suggested that graphene materials are biocompatible in a number of studies focused on biomedical applications [<a id=\"ref-link-section-d69921e4112\" title=\"Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR119\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 119\">119<\/a>, <a id=\"ref-link-section-d69921e4115\" title=\"Sahu A, Choi WI, Tae G. A stimuli-sensitive injectable graphene oxide composite hydrogel. Chem Commun (Camb). 2012;48(47):5820\u20132.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR154\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 154\">154<\/a>, <a id=\"ref-link-section-d69921e4118\" title=\"Ali-Boucetta H, Bitounis D, Raveendran-Nair R, Servant A, Van den Bossche J, Kostarelos K. Purified graphene oxide dispersions lack in vitro cytotoxicity and in vivo pathogenicity. Adv Healthc Mater. 2013;2(3):433\u201341.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR162\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 162\">162<\/a>, <a id=\"ref-link-section-d69921e4121\" title=\"Liu C, Yu W, Chen Z, Zhang J, Zhang N. Enhanced gene transfection efficiency in CD13-positive vascular endothelial cells with targeted poly(lactic acid)-poly(ethylene glycol) nanoparticles through caveolae-mediated endocytosis. J Contr Rel. 2011;151(1873\u20134995 (Electronic)):162\u201375.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR219\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 219\">219<\/a>], and other studies reported adverse biological responses and cytotoxicity [<a id=\"ref-link-section-d69921e4124\" title=\"Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR32\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\">32<\/a>, <a id=\"ref-link-section-d69921e4128\" title=\"Akhavan O, Ghaderi E, Akhavan A. Size-dependent genotoxicity of graphene nanoplatelets in human stem cells. Biomaterials. 2012;33(32):8017\u201325.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR118\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 118\">118<\/a>, <a id=\"ref-link-section-d69921e4131\" title=\"Wang K, Jing R, Song H, Zhang J, Yan W, Guo S, et al. Biocompatibility of graphene oxide. Nanoscale Res Lett. 2010;6(1):1\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR135\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 135\">135<\/a>, <a id=\"ref-link-section-d69921e4134\" title=\"Mullick Chowdhury S, Lalwani G, Zhang K, Yang JY, Neville K, Sitharaman B. Cell specific cytotoxicity and uptake of graphene nanoribbons. Biomaterials. 2013;34(1):283\u201393.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR138\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 138\">138<\/a>, <a id=\"ref-link-section-d69921e4137\" title=\"Chen GY, Yang HJ, Lu CH, Chao YC, Hwang SM, Chen CL, et al. Simultaneous induction of autophagy and toll-like receptor signaling pathways by graphene oxide. Biomaterials. 2012;33(27):6559\u201369.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR192\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 192\">192<\/a>]. These inconsistent results might have been caused by several factors, including the different research groups, various cellular or animal models, and varying physicochemical characterizations of GFNs. When GFNs are explored for in vivo applications in the human body or some other biomedical applications, biocompatibility must be considered, and more detailed and accurate studies of GFNs toxicity are needed.<\/p>\n<p>First, detailed physicochemical characterization is imperative in all future studies of GFNs toxicity. In the experiments, feature descriptions of GFNs should include their size, morphology, surface area, charge, surface modifications, purity, and agglomeration [<a id=\"ref-link-section-d69921e4143\" title=\"Mu Q, Su G, Li L, Gilbertson BO, Yu LH, Zhang Q, et al. Size-dependent cell uptake of protein-coated graphene oxide nanosheets. ACS Appl Mater Interf. 2012;4(4):2259\u201366.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR88\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 88\">88<\/a>, <a id=\"ref-link-section-d69921e4146\" title=\"Hsieh CT, Chen WY. Water\/oil repellency and work of adhesion of liquid droplets on graphene oxide and graphene surfaces. Surf Coat Technol. 2011;205(19):4554\u201361.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR141\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 141\">141<\/a>, <a id=\"ref-link-section-d69921e4149\" title=\"Wang A, Pu K, Dong B, Liu Y, Zhang L, Zhang Z, et al. Role of surface charge and oxidative stress in cytotoxicity and genotoxicity of graphene oxide towards human lung fibroblast cells. J Appl Toxicol. 2013;33(10):1156\u201364.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR148\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 148\">148<\/a>, <a id=\"ref-link-section-d69921e4152\" title=\"Ali-Boucetta H, Bitounis D, Raveendran-Nair R, Servant A, Van den Bossche J, Kostarelos K. Purified graphene oxide dispersions lack in vitro cytotoxicity and in vivo pathogenicity. Adv Healthc Mater. 2013;2(3):433\u201341.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR162\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 162\">162<\/a>]. Because these physicochemical factors largely influence the toxicity and biocompatibility of GFNs, single-factor experimental designs and the exclusion of other interfering factors should be considered. Details of the fabrication process should also be provided because the formed oxidative debris could largely alter the surface structure of graphene and GO during functionalization [<a id=\"ref-link-section-d69921e4155\" title=\"Zhang W, Wang C, Li Z, Lu Z, Li Y, Yin JJ, et al. Unraveling stress-induced toxicity properties of graphene oxide and the underlying mechanism. Adv Mater. 2012;24(39):5391\u20137.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR151\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 151\">151<\/a>]. Importantly, a single, universal method needs to be established in graphene technology, which will allow for better comparison of data from different studies or different laboratories.<\/p>\n<p>Second, different observational criteria, parameters and selection of experimental methods might induce large inter-laboratory variations [<a id=\"ref-link-section-d69921e4161\" title=\"Ema M, Aoyama H, Arima A, Asano Y, Chihara K, Endoh K, et al. Historical control data on prenatal developmental toxicity studies in rabbits. Congenit Anom. 2012;52(3):155\u201361.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR220\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 220\">220<\/a>, <a id=\"ref-link-section-d69921e4164\" title=\"Ema M, Endoh K, Fukushima R, Fujii S, Hara H, Hirata-Koizumi M, et al. Historical control data on developmental toxicity studies in rodents. Congenit Anom. 2014;54(3):150\u201361.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR221\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 221\">221<\/a>]. For example, the MTT assay always fails to accurately predict graphene toxicity because the spontaneous reduction results in a false positive signal. Therefore, appropriate alternative assessments should be utilized, such as the water-soluble tetrazolium salt reagent (WST-8), ROS assay, and trypan blue exclusion test [<a id=\"ref-link-section-d69921e4167\" title=\"Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR106\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 106\">106<\/a>, <a id=\"ref-link-section-d69921e4170\" title=\"Bitounis D, Ali-Boucetta H, Hong BH, Min DH, Kostarelos K. Prospects and challenges of graphene in biomedical applications. Adv Mater. 2013;25(16):2258\u201368.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR222\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 222\">222<\/a>]. Additionally, the comet assay often shows higher levels of DNA damage than the micronucleus assay because the former measures the repairable injury and the latter measures the gene damage that remains after cell division [<a id=\"ref-link-section-d69921e4173\" title=\"Singh N, Manshian B, Jenkins GJS, Griffiths SM, Williams PM, Maffeis TGG, et al. NanoGenotoxicology: The DNA damaging potential of engineered nanomaterials. Biomaterials. 2009;30(s 23\u201324):3891\u2013914.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR159\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 159\">159<\/a>, <a id=\"ref-link-section-d69921e4177\" title=\"Van Goethem F, Lison D, Kirsch-Volders M. Comparative evaluation of the in vitro micronucleus test and the alkaline single cell gel electrophoresis assay for the detection of DNA damaging agents: genotoxic effects of cobalt powder, tungsten carbide and cobalt-tungsten carbide. Mutat Res. 1997;392(1\u20132):31\u201343.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR223\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 223\">223<\/a>]. Therefore, caution is required in choosing the most appropriate assay to evaluate the toxicity of graphene materials to avoid false-positive results.<\/p>\n<p>Third, the selection of cell lines is of vital importance because cancer cell lines tend to be sensitive or resistant depending upon their genetic background. The same graphene nanoparticles can cause different reactions depending on their various cells origins. Suitable cell lines with good stability must be used to avoid false positive or negative results. Primary cells derived from humans or animals can better simulate the health conditions of humans. A large amount of primary cells have been utilized to test the toxicity of other nanomaterials [<a id=\"ref-link-section-d69921e4183\" title=\"Natarajan V, Wilson CL, Hayward SL, Kidambi S. Titanium dioxide nanoparticles trigger loss of function and perturbation of mitochondrial dynamics in primary hepatocytes. PLoS One. 2015;10(1932\u20136203 (Electronic)):e0134541.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR224\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 224\">224<\/a>\u2013<a id=\"ref-link-section-d69921e4186\" title=\"Osmond-McLeod MJ, Osmond RI, Oytam Y, McCall MJ, Feltis B, Mackay-Sim A, et al. Surface coatings of ZnO nanoparticles mitigate differentially a host of transcriptional, protein and signalling responses in primary human olfactory cells. Part Fibre Toxicol. 2013;10(1743\u20138977 (Electronic)):1.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR228\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 228\">228<\/a>], but the culturing of primary cells is extremely rare in the experiments with GFNs to date [<a id=\"ref-link-section-d69921e4189\" title=\"Sasidharan A, Swaroop S, Chandran P, Nair S, Koyakutty M. Cellular and molecular mechanistic insight into the DNA-damaging potential of few-layer graphene in human primary endothelial cells. Nanomed. 2016;12(1549\u20139642 (Electronic)):1347\u201355.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR210\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 210\">210<\/a>, <a id=\"ref-link-section-d69921e4192\" title=\"Meng S, Peng R. Growth and follow-up of primary cortical neuron cells on nonfunctionalized graphene nanosheet film. J Appl Biomater Funct Mater. 2016;14(2280\u20138000 (Electronic)):e26\u201334.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR229\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 229\">229<\/a>]. Various cell experiments combined with primary cells should be performed to comprehensively evaluate the physicochemical properties and toxicity of GFNs.<\/p>\n<p>Fourth, the administration route of GFNs plays a very important role in toxicity studies, and different delivery methods will result in different toxicological reactions [<a id=\"ref-link-section-d69921e4199\" title=\"Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR32\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\">32<\/a>, <a id=\"ref-link-section-d69921e4202\" title=\"Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR53\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 53\">53<\/a>]. Thus, the route and period of exposure should be carefully chosen according to the aim of the study. Nasal drug delivery is often used to study the neurotoxicity of nanomaterials [<a id=\"ref-link-section-d69921e4205\" title=\"Kwon JT, Seo GB, Jo, Lee M, Kim HM, Shim I, et al. Aluminum nanoparticles induce ERK and p38MAPK activation in rat brain. Toxicol Res. 2013;29(1976\u20138257 (Print)):181\u20135.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR230\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 230\">230<\/a>, <a id=\"ref-link-section-d69921e4208\" title=\"Radcliffe PM, Olabisi AO, Wagner DJ, Leavens T, Wong BA, Struve MF, et al. Acute sodium tungstate inhalation is associated with minimal olfactory transport of tungsten (188W) to the rat brain. Neurotoxicology. 2009;30(1872\u20139711 (Electronic)):445\u201350.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR231\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 231\">231<\/a>], but this administration method has rarely been applied in the testing of GFNs toxicity. Toxicological studies of GFNs in the nervous system are rare, and the mechanism is unclear and needs to be studied further in the future. Recent toxicokinetic studies involving the absorption, distribution, metabolism, accumulation, and excretion of GFNs through different exposure routes have yielded some results but are far from sufficient to clarify the internal complex mechanisms. For instance, further studies are needed to understand the specific molecular mechanisms of GFNs passing through the physiological barriers and the amount of accumulation or the excretion period of GFNs in tissues. In addition, given the increased exposure of humans to GFNs, the assessment of systemic toxicity in the human body is indispensable in future studies.<\/p>\n<p>Fifth, another important issue requiring attention is the long-term fate of GFNs after entering the body or being taken up by cells. Most recent studies have consisted of short-term toxicity assessments [<a id=\"ref-link-section-d69921e4214\" title=\"Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR89\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 89\">89<\/a>, <a id=\"ref-link-section-d69921e4217\" title=\"Zhang H, Li ZF, Snyder A, Xie J, Stanciu LA. Functionalized graphene oxide for the fabrication of paraoxon biosensors. Anal Chim Acta. 2014;827:86\u201394.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR232\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 232\">232<\/a>], and long-term toxic injury has not received much attention since the widespread application of GFNs in 2008. Moreover, a functionalized graphene surface can improve its biocompatibility, but the long-term stability of the surface coatings should be considered [<a id=\"ref-link-section-d69921e4220\" title=\"Schriver M, Regan W, Gannett WJ, Zaniewski AM, Crommie MF, Zettl A. Graphene as a long-term metal oxidation barrier: worse than nothing. ACS Nano. 2013;7(1936-086X (Electronic)):5763\u20138.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR233\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 233\">233<\/a>]. If the surface coatings eventually break down, their toxicity may be significantly different from the short-term exposure results. Extended studies are needed to determine if longer treatment times influence the nanotoxic potential of GFNs.<\/p>\n<p>Sixth, more specific signalling pathways in the mechanism of GFNs toxicity need to be discovered and elucidated. Currently, several typical toxicity mechanisms of GFNs have been illustrated and widely accepted, such as oxidative stress, apoptosis, and autophagy. However, these mechanisms have only been described in general terms, and the specific signalling pathways within these mechanisms need to be investigated in detail. The signalling pathways involved in the toxicity of other nanomaterials may also be relevant to the study of GFNs. Therefore, more signalling pathways should be detected in future research. For instance, nano-epigenetics has been considered in numerous studies of nanomaterials, which is also helpful in assessing the limited toxicity and side effects of GFNs. Recent studies have shown that GFNs could cause epigenetic and genomic changes that might stimulate physical toxicity and carcinogenicity [<a id=\"ref-link-section-d69921e4226\" title=\"Soldano C, Mahmood A, Dujardin E. Production, properties and potential of graphene. Carbon. 2010;48(8):2127\u201350.\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y#ref-CR234\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 234\">234<\/a>]. GFNs have high surface areas, smooth continuous surfaces and bio-persistence, similar to the properties of tumorigenic solid-state implants. It is unknown whether GFNs have the potential to induce foreign body sarcomas, and definitive studies of tumour potentialities or risks of graphene should therefore be conducted as soon as possible.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Conclusions\">\n<div id=\"Sec37-section\" class=\"c-article-section\">\n<h2 id=\"Sec37\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Conclusions<\/h2>\n<div id=\"Sec37-content\" class=\"c-article-section__content\">\n<p>In the past few years, GFNs have been widely utilized in a wide range of technological and biomedical fields. Currently, most experiments have focused on the toxicity of GFNs in the lungs and livers. Therefore, studies of brain injury or neurotoxicity deserve more attention in the future. Many experiments have shown that GFNs have toxic side effects in many biological applications, but the in-depth study of toxicity mechanisms is urgently needed. In addition, contrasting results regarding the toxicity of GFNs need to be addressed by effective experimental methods and systematic studies. This review provides an overview of the toxicity of GFNs by summarizing the toxicokinetics, toxicity mechanisms and influencing factors and aimed to provide information to facilitate thorough research on the in vitro and in vivo haemo- and biocompatibility of GFNs in the future. This review will help address safety concerns before the clinical and therapeutic applications of GFNs, which will be important for further development of GFNs in biological applications.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Abbreviations\">\n<div id=\"abbreviations-section\" class=\"c-article-section\">\n<h2 id=\"abbreviations\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Abbreviations<\/h2>\n<div id=\"abbreviations-content\" class=\"c-article-section__content\">\n<dl class=\"c-abbreviation_list\">\n<dt class=\"c-abbreviation_list__term\"><dfn>AMs:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Alveolar macrophages<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>BBB:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Blood-brain barrier<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>BEB:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Blood-epididymis barriers<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>BTB:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Blood-testis barrier<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>CR:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Complement receptor<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>FcgR:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Fcg receptor<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>FLG:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Few-layer graphene<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GFNs:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Graphene family nanomaterials<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GNS:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Graphene nanosheets<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Graphene oxide<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-COOH:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Carboxylated graphene oxide<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-DEX:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">GO-dextran<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-MB:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">GO-molecular beacon<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-NH2:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Aminated GO<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-PAA:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Poly(acrylic acid)-functionalized GO<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-PAM:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Poly(acrylamide)-functionalized GO<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-PEG:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">PEGylated GO derivatives<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GO-PEI:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">GO-polyethylenimine<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GQDs:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Graphene quantum dots<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GSH-PX:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Glutathione peroxidase<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>GXVG:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Carboxyl graphene<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>LDH:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Lactate and dehydrogenase<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>MALDI:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Matrix-assisted laser desorption\/ionization<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>MAPKs:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Mitogen-activated protein kinase<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>MDA:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Malondialdehyde<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>M\u00d8:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Macrophage<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>MR:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Mannose receptor<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>MSI:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Mass spectrometry imaging<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>PC12 cells:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Rat pheochromocytoma cells<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>PCGO:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Protein-coated graphene oxide nanoparticles<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>PrGO:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">PEGylated reduced graphene oxide<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>RES:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Reticuloendothelial system<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>rGO:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Reduced graphene oxide<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>ROS:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Reactive oxygen species<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>SOD:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Superoxide dismutase<\/dd>\n<dt class=\"c-abbreviation_list__term\"><dfn>TLRs:<\/dfn><\/dt>\n<dd class=\"c-abbreviation_list__description\">Toll-like receptor<\/dd>\n<\/dl>\n<\/div>\n<\/div>\n<\/section>\n<div id=\"MagazineFulltextArticleBodySuffix\">\n<section aria-labelledby=\"Bib1\" data-title=\"References\">\n<div id=\"Bib1-section\" class=\"c-article-section\">\n<h2 id=\"Bib1\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">References<\/h2>\n<div id=\"Bib1-content\" class=\"c-article-section__content\">\n<div data-container-section=\"references\">\n<ol class=\"c-article-references\">\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">1.<\/span>\n<p id=\"ref-CR1\" class=\"c-article-references__text\">Novoselov KS, Geim AK, Morozov SV, Jiang D, Zhang Y, Dubonos SV, et al. Electric field effect in atomically thin carbon films. Science. 2004;306(5696):666\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD2cXos1Kqt70%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 1\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=15499015\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 1\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1126%2Fscience.1102896\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 1\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Electric%20field%20effect%20in%20atomically%20thin%20carbon%20films&amp;journal=Science&amp;volume=306&amp;issue=5696&amp;pages=666-9&amp;publication_year=2004&amp;author=Novoselov%2CKS&amp;author=Geim%2CAK&amp;author=Morozov%2CSV&amp;author=Jiang%2CD&amp;author=Zhang%2CY&amp;author=Dubonos%2CSV\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 1\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">2.<\/span>\n<p id=\"ref-CR2\" class=\"c-article-references__text\">Sanchez VC, Jachak A, Hurt RH, Kane AB. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. Chem Res Toxicol. 2012;25(1):15\u201334.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhtlGjt73N\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 2\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21954945\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 2\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Ftx200339h\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 2\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biological%20interactions%20of%20graphene-family%20nanomaterials%3A%20an%20interdisciplinary%20review&amp;journal=Chem%20Res%20Toxicol&amp;volume=25&amp;issue=1&amp;pages=15-34&amp;publication_year=2012&amp;author=Sanchez%2CVC&amp;author=Jachak%2CA&amp;author=Hurt%2CRH&amp;author=Kane%2CAB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 2\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">3.<\/span>\n<p id=\"ref-CR3\" class=\"c-article-references__text\">Yang XY, Wang YS, Huang X, Ma YF, Huang Y, Yang RC, et al. Multi-functionalized graphene oxide based anticancer drug-carrier with dual-targeting function and pH-sensitivity. J Mat Chem. 2011;21(10):3448\u201354.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXit1ynu78%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 3\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC0JM02494E\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 3\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Multi-functionalized%20graphene%20oxide%20based%20anticancer%20drug-carrier%20with%20dual-targeting%20function%20and%20pH-sensitivity&amp;journal=J%20Mat%20Chem&amp;volume=21&amp;issue=10&amp;pages=3448-54&amp;publication_year=2011&amp;author=Yang%2CXY&amp;author=Wang%2CYS&amp;author=Huang%2CX&amp;author=Ma%2CYF&amp;author=Huang%2CY&amp;author=Yang%2CRC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 3\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">4.<\/span>\n<p id=\"ref-CR4\" class=\"c-article-references__text\">Park S, An J, Jung I, Piner RD, An SJ, Li X, et al. Colloidal suspensions of highly reduced graphene oxide in a wide variety of organic solvents. Nano Lett. 2009;9(4):1593\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXislagsb8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 4\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19265429\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 4\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnl803798y\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 4\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Colloidal%20suspensions%20of%20highly%20reduced%20graphene%20oxide%20in%20a%20wide%20variety%20of%20organic%20solvents&amp;journal=Nano%20Lett&amp;volume=9&amp;issue=4&amp;pages=1593-7&amp;publication_year=2009&amp;author=Park%2CS&amp;author=An%2CJ&amp;author=Jung%2CI&amp;author=Piner%2CRD&amp;author=An%2CSJ&amp;author=Li%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 4\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">5.<\/span>\n<p id=\"ref-CR5\" class=\"c-article-references__text\">Geim AK. Graphene: status and prospects. Science. 2009;324(5934):1530\u20134.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXnsFOrsLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 5\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19541989\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 5\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1126%2Fscience.1158877\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 5\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%3A%20status%20and%20prospects&amp;journal=Science&amp;volume=324&amp;issue=5934&amp;pages=1530-4&amp;publication_year=2009&amp;author=Geim%2CAK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 5\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">6.<\/span>\n<p id=\"ref-CR6\" class=\"c-article-references__text\">Guo X, Mei N. Assessment of the toxic potential of graphene family nanomaterials. J Food Drug Anal. 2014;22(1):105\u201315.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhtlClurvJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 6\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24673908\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 6\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.jfda.2014.01.009\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 6\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Assessment%20of%20the%20toxic%20potential%20of%20graphene%20family%20nanomaterials&amp;journal=J%20Food%20Drug%20Anal&amp;volume=22&amp;issue=1&amp;pages=105-15&amp;publication_year=2014&amp;author=Guo%2CX&amp;author=Mei%2CN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 6\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">7.<\/span>\n<p id=\"ref-CR7\" class=\"c-article-references__text\">Seabra AB, Paula AJ, de Lima R, Alves OL, Duran N. Nanotoxicity of graphene and graphene oxide. Chem Res Toxicol. 2014;27(2):159\u201368.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitFKjsA%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 7\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24422439\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 7\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Ftx400385x\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 7\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nanotoxicity%20of%20graphene%20and%20graphene%20oxide&amp;journal=Chem%20Res%20Toxicol&amp;volume=27&amp;issue=2&amp;pages=159-68&amp;publication_year=2014&amp;author=Seabra%2CAB&amp;author=Paula%2CAJ&amp;author=Lima%2CR&amp;author=Alves%2COL&amp;author=Duran%2CN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 7\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">8.<\/span>\n<p id=\"ref-CR8\" class=\"c-article-references__text\">Shen H, Zhang L, Liu M, Zhang Z. Biomedical applications of graphene. Theranostics. 2012;2(3):283\u201394.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XlsVantL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 8\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22448195\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 8\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3311234\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 8\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.7150%2Fthno.3642\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 8\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biomedical%20applications%20of%20graphene&amp;journal=Theranostics&amp;volume=2&amp;issue=3&amp;pages=283-94&amp;publication_year=2012&amp;author=Shen%2CH&amp;author=Zhang%2CL&amp;author=Liu%2CM&amp;author=Zhang%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 8\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">9.<\/span>\n<p id=\"ref-CR9\" class=\"c-article-references__text\">Han U, Seo Y, Hong J. Effect of pH on the structure and drug release profiles of layer-by-layer assembled films containing polyelectrolyte, micelles, and graphene oxide. Sci Rep. 2016;6(2045\u20132322 (Electronic)):24158.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28Xls1Klur4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 9\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=27052827\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 9\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4823712\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 9\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fsrep24158\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 9\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effect%20of%20pH%20on%20the%20structure%20and%20drug%20release%20profiles%20of%20layer-by-layer%20assembled%20films%20containing%20polyelectrolyte%2C%20micelles%2C%20and%20graphene%20oxide&amp;journal=Sci%20Rep&amp;volume=6&amp;issue=2045%E2%80%932322%20%28Electronic%29&amp;publication_year=2016&amp;author=Han%2CU&amp;author=Seo%2CY&amp;author=Hong%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 9\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">10.<\/span>\n<p id=\"ref-CR10\" class=\"c-article-references__text\">Wang H, Liang Y, Mirfakhrai T, Chen Z, Casalongue HS, Dai H. Advanced asymmetrical supercapacitors based on graphene hybrid materials. Nano Res. 2011;4(8):729\u201336.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXpvVymtb8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 10\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs12274-011-0129-6\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 10\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Advanced%20asymmetrical%20supercapacitors%20based%20on%20graphene%20hybrid%20materials&amp;journal=Nano%20Res&amp;volume=4&amp;issue=8&amp;pages=729-36&amp;publication_year=2011&amp;author=Wang%2CH&amp;author=Liang%2CY&amp;author=Mirfakhrai%2CT&amp;author=Chen%2CZ&amp;author=Casalongue%2CHS&amp;author=Dai%2CH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 10\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">11.<\/span>\n<p id=\"ref-CR11\" class=\"c-article-references__text\">Loh KP, Bao Q, Eda G, Chhowalla M. Graphene oxide as a chemically tunable platform for optical applications. Nat Chem. 2010;2(12):1015\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsVOrsLzK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 11\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21107364\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 11\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnchem.907\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 11\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20as%20a%20chemically%20tunable%20platform%20for%20optical%20applications&amp;journal=Nat%20Chem&amp;volume=2&amp;issue=12&amp;pages=1015-24&amp;publication_year=2010&amp;author=Loh%2CKP&amp;author=Bao%2CQ&amp;author=Eda%2CG&amp;author=Chhowalla%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 11\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">12.<\/span>\n<p id=\"ref-CR12\" class=\"c-article-references__text\">Wang D, Zhu L, Chen JF, Dai L. Mn3O4-graphene hybrid as a high-capacity anode material for lithium ion batteries. J Am Chem Soc. 2015;132(1520\u20135126 (Electronic)):13978\u201380.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Mn3O4-graphene%20hybrid%20as%20a%20high-capacity%20anode%20material%20for%20lithium%20ion%20batteries&amp;journal=J%20Am%20Chem%20Soc&amp;volume=132&amp;issue=1520%E2%80%935126%20%28Electronic%29&amp;pages=13978-80&amp;publication_year=2015&amp;author=Wang%2CD&amp;author=Zhu%2CL&amp;author=Chen%2CJF&amp;author=Dai%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 12\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">13.<\/span>\n<p id=\"ref-CR13\" class=\"c-article-references__text\">Gurunathan S, Han JW, Dayem AA, Eppakayala V, Kim JH. Oxidative stress-mediated antibacterial activity of graphene oxide and reduced graphene oxide in Pseudomonas aeruginosa. Int J Nanomed. 2012;7(1178\u20132013 (Electronic)):e14.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Oxidative%20stress-mediated%20antibacterial%20activity%20of%20graphene%20oxide%20and%20reduced%20graphene%20oxide%20in%20Pseudomonas%20aeruginosa&amp;journal=Int%20J%20Nanomed&amp;volume=7&amp;issue=1178%E2%80%932013%20%28Electronic%29&amp;publication_year=2012&amp;author=Gurunathan%2CS&amp;author=Han%2CJW&amp;author=Dayem%2CAA&amp;author=Eppakayala%2CV&amp;author=Kim%2CJH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 13\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">14.<\/span>\n<p id=\"ref-CR14\" class=\"c-article-references__text\">Zhan S, Zhu D, Ma S, Yu W, Jia Y, Li Y, et al. Highly efficient removal of pathogenic bacteria with magnetic graphene composite. ACS Appl Mater Interf. 2015;7(1944\u20138252 (Electronic)):4290\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhslegu74%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 14\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fam508682s\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 14\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Highly%20efficient%20removal%20of%20pathogenic%20bacteria%20with%20magnetic%20graphene%20composite&amp;journal=ACS%20Appl%20Mater%20Interf&amp;volume=7&amp;issue=1944%E2%80%938252%20%28Electronic%29&amp;pages=4290-8&amp;publication_year=2015&amp;author=Zhan%2CS&amp;author=Zhu%2CD&amp;author=Ma%2CS&amp;author=Yu%2CW&amp;author=Jia%2CY&amp;author=Li%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 14\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">15.<\/span>\n<p id=\"ref-CR15\" class=\"c-article-references__text\">Yang HW, Hua MY, Chen SL, Tsai RY. Reusable sensor based on high magnetization carboxyl-modified graphene oxide with intrinsic hydrogen peroxide catalytic activity for hydrogen peroxide and glucose detection. Biosens Bioelectron. 2013;41:172\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtlSkt73I\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 15\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22959012\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 15\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.bios.2012.08.008\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 15\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Reusable%20sensor%20based%20on%20high%20magnetization%20carboxyl-modified%20graphene%20oxide%20with%20intrinsic%20hydrogen%20peroxide%20catalytic%20activity%20for%20hydrogen%20peroxide%20and%20glucose%20detection&amp;journal=Biosens%20Bioelectron&amp;volume=41&amp;pages=172-9&amp;publication_year=2013&amp;author=Yang%2CHW&amp;author=Hua%2CMY&amp;author=Chen%2CSL&amp;author=Tsai%2CRY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 15\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">16.<\/span>\n<p id=\"ref-CR16\" class=\"c-article-references__text\">Wang Y, Yuan R, Chai Y, Yuan Y, Bai L. In situ enzymatic silver enhancement based on functionalized graphene oxide and layer-by-layer assembled gold nanoparticles for ultrasensitive detection of thrombin. Biosens Bioelectron. 2012;38(1):50\u20134.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22664382\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 16\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.bios.2012.04.046\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 16\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XotVemurs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 16\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20situ%20enzymatic%20silver%20enhancement%20based%20on%20functionalized%20graphene%20oxide%20and%20layer-by-layer%20assembled%20gold%20nanoparticles%20for%20ultrasensitive%20detection%20of%20thrombin&amp;journal=Biosens%20Bioelectron&amp;volume=38&amp;issue=1&amp;pages=50-4&amp;publication_year=2012&amp;author=Wang%2CY&amp;author=Yuan%2CR&amp;author=Chai%2CY&amp;author=Yuan%2CY&amp;author=Bai%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 16\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">17.<\/span>\n<p id=\"ref-CR17\" class=\"c-article-references__text\">Huang J, Zhang L, Liang RP, Qiu JD. \u201cOn-off\u201d switchable electrochemical affinity nanobiosensor based on graphene oxide for ultrasensitive glucose sensing. Biosens Bioelectron. 2013;41:430\u20135.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhsVegsbjM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 17\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23026685\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 17\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.bios.2012.09.007\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 17\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=%E2%80%9COn-off%E2%80%9D%20switchable%20electrochemical%20affinity%20nanobiosensor%20based%20on%20graphene%20oxide%20for%20ultrasensitive%20glucose%20sensing&amp;journal=Biosens%20Bioelectron&amp;volume=41&amp;pages=430-5&amp;publication_year=2013&amp;author=Huang%2CJ&amp;author=Zhang%2CL&amp;author=Liang%2CRP&amp;author=Qiu%2CJD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 17\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">18.<\/span>\n<p id=\"ref-CR18\" class=\"c-article-references__text\">Gao L, Lian C, Zhou Y, Yan L, Li Q, Zhang C, et al. Graphene oxide-DNA based sensors. Biosens Bioelectron. 2014;60(1873\u20134235 (Electronic)):22\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXovVKiu7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 18\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24768760\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 18\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.bios.2014.03.039\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 18\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide-DNA%20based%20sensors&amp;journal=Biosens%20Bioelectron&amp;volume=60&amp;issue=1873%E2%80%934235%20%28Electronic%29&amp;pages=22-9&amp;publication_year=2014&amp;author=Gao%2CL&amp;author=Lian%2CC&amp;author=Zhou%2CY&amp;author=Yan%2CL&amp;author=Li%2CQ&amp;author=Zhang%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 18\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">19.<\/span>\n<p id=\"ref-CR19\" class=\"c-article-references__text\">Chen ML, Liu JW, Hu B, Chen ML, Wang JH. Conjugation of quantum dots with graphene for fluorescence imaging of live cells. Analyst. 2011;136(20):4277\u201383.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXht1ags7vL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 19\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21879034\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 19\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc1an15474e\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 19\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Conjugation%20of%20quantum%20dots%20with%20graphene%20for%20fluorescence%20imaging%20of%20live%20cells&amp;journal=Analyst&amp;volume=136&amp;issue=20&amp;pages=4277-83&amp;publication_year=2011&amp;author=Chen%2CML&amp;author=Liu%2CJW&amp;author=Hu%2CB&amp;author=Chen%2CML&amp;author=Wang%2CJH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 19\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">20.<\/span>\n<p id=\"ref-CR20\" class=\"c-article-references__text\">Wang Y, Wang H, Liu D, Song S, Wang X, Zhang H. Graphene oxide covalently grafted upconversion nanoparticles for combined NIR mediated imaging and photothermal\/photodynamic cancer therapy. Biomaterials. 2013;34(1878\u20135905 (Electronic)):7715\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtFShs7vE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 20\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23859660\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 20\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2013.06.045\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 20\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20covalently%20grafted%20upconversion%20nanoparticles%20for%20combined%20NIR%20mediated%20imaging%20and%20photothermal%2Fphotodynamic%20cancer%20therapy&amp;journal=Biomaterials&amp;volume=34&amp;issue=1878%E2%80%935905%20%28Electronic%29&amp;pages=7715-24&amp;publication_year=2013&amp;author=Wang%2CY&amp;author=Wang%2CH&amp;author=Liu%2CD&amp;author=Song%2CS&amp;author=Wang%2CX&amp;author=Zhang%2CH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 20\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">21.<\/span>\n<p id=\"ref-CR21\" class=\"c-article-references__text\">Pan Y, Sahoo NG, Li L. The application of graphene oxide in drug delivery. Expert Opin Drug Deliv. 2012;9(11):1365\u201376.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhsFCgsbbL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 21\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23005029\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 21\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1517%2F17425247.2012.729575\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 21\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20application%20of%20graphene%20oxide%20in%20drug%20delivery&amp;journal=Expert%20Opin%20Drug%20Deliv&amp;volume=9&amp;issue=11&amp;pages=1365-76&amp;publication_year=2012&amp;author=Pan%2CY&amp;author=Sahoo%2CNG&amp;author=Li%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 21\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">22.<\/span>\n<p id=\"ref-CR22\" class=\"c-article-references__text\">Huiyun W, Chunyan D, Haiqing D, Aijun S, Wenjuan X, Xiaojun C, et al. Engineered redox-responsive PEG detachment mechanism in PEGylated nano-graphene oxide for intracellular drug delivery. Small. 2012;8(5):760\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201101613\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 22\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xkt1Cnsg%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 22\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Engineered%20redox-responsive%20PEG%20detachment%20mechanism%20in%20PEGylated%20nano-graphene%20oxide%20for%20intracellular%20drug%20delivery&amp;journal=Small&amp;volume=8&amp;issue=5&amp;pages=760-9&amp;publication_year=2012&amp;author=Huiyun%2CW&amp;author=Chunyan%2CD&amp;author=Haiqing%2CD&amp;author=Aijun%2CS&amp;author=Wenjuan%2CX&amp;author=Xiaojun%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 22\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">23.<\/span>\n<p id=\"ref-CR23\" class=\"c-article-references__text\">Yang X, Qiu L, Cheng C, Wu Y, Ma ZF, Li D. Ordered gelation of chemically converted graphene for next-generation electroconductive hydrogel films. Angewandte Chem Int Ed Engl. 2011;50(32):7325\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXotV2gsr0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 23\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fanie.201100723\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 23\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Ordered%20gelation%20of%20chemically%20converted%20graphene%20for%20next-generation%20electroconductive%20hydrogel%20films&amp;journal=Angewandte%20Chem%20Int%20Ed%20Engl&amp;volume=50&amp;issue=32&amp;pages=7325-8&amp;publication_year=2011&amp;author=Yang%2CX&amp;author=Qiu%2CL&amp;author=Cheng%2CC&amp;author=Wu%2CY&amp;author=Ma%2CZF&amp;author=Li%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 23\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">24.<\/span>\n<p id=\"ref-CR24\" class=\"c-article-references__text\">Schinwald A, Murphy FA, Jones A, Macnee W, Donaldson K. Graphene-based nanoplatelets: a new risk to the respiratory system as a consequence of their unusual aerodynamic properties. ACS Nano. 2012;6(1):736\u201346.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhs1GrurnP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 24\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22195731\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 24\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn204229f\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 24\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene-based%20nanoplatelets%3A%20a%20new%20risk%20to%20the%20respiratory%20system%20as%20a%20consequence%20of%20their%20unusual%20aerodynamic%20properties&amp;journal=ACS%20Nano&amp;volume=6&amp;issue=1&amp;pages=736-46&amp;publication_year=2012&amp;author=Schinwald%2CA&amp;author=Murphy%2CFA&amp;author=Jones%2CA&amp;author=Macnee%2CW&amp;author=Donaldson%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 24\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">25.<\/span>\n<p id=\"ref-CR25\" class=\"c-article-references__text\">Chaenyung C, Ryon SS, Xiguang G, Nasim A, Dokmeci MR, Xiaowu Shirley T, et al. Controlling mechanical properties of cell-laden hydrogels by covalent incorporation of graphene oxide. Small. 2014;10(3):514\u201323.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201302182\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 25\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhs1WmsLrL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 25\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Controlling%20mechanical%20properties%20of%20cell-laden%20hydrogels%20by%20covalent%20incorporation%20of%20graphene%20oxide&amp;journal=Small&amp;volume=10&amp;issue=3&amp;pages=514-23&amp;publication_year=2014&amp;author=Chaenyung%2CC&amp;author=Ryon%2CSS&amp;author=Xiguang%2CG&amp;author=Nasim%2CA&amp;author=Dokmeci%2CMR&amp;author=Xiaowu%20Shirley%2CT\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 25\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">26.<\/span>\n<p id=\"ref-CR26\" class=\"c-article-references__text\">Arvidsson R, Molander S, Sand\u00e9n BA. Review of potential environmental and health risks of the nanomaterial graphene. Hum Ecol Risk Assess. 2013;19(4):873\u201387.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXjvFCgtL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 26\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Review%20of%20potential%20environmental%20and%20health%20risks%20of%20the%20nanomaterial%20graphene&amp;journal=Hum%20Ecol%20Risk%20Assess&amp;volume=19&amp;issue=4&amp;pages=873-87&amp;publication_year=2013&amp;author=Arvidsson%2CR&amp;author=Molander%2CS&amp;author=Sand%C3%A9n%2CBA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 26\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">27.<\/span>\n<p id=\"ref-CR27\" class=\"c-article-references__text\">Lee JH, Han JH, Kim JH, Kim B, Bello D, Kim JK, et al. Exposure monitoring of graphene nanoplatelets manufacturing workplaces. Inhal Toxicol. 2016;28(6):281\u201391.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28Xlslamtbc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 27\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=27055369\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 27\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F08958378.2016.1163442\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 27\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Exposure%20monitoring%20of%20graphene%20nanoplatelets%20manufacturing%20workplaces&amp;journal=Inhal%20Toxicol&amp;volume=28&amp;issue=6&amp;pages=281-91&amp;publication_year=2016&amp;author=Lee%2CJH&amp;author=Han%2CJH&amp;author=Kim%2CJH&amp;author=Kim%2CB&amp;author=Bello%2CD&amp;author=Kim%2CJK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 27\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">28.<\/span>\n<p id=\"ref-CR28\" class=\"c-article-references__text\">Maynard RL. Nano-technology and nano-toxicology. Emerg Health Threats J. 2012;5.<\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">29.<\/span>\n<p id=\"ref-CR29\" class=\"c-article-references__text\">Su WC, Ku BK, Kulkarni P, Cheng YS. Deposition of graphene nanomaterial aerosols in human upper airways. J Occup Environ Hyg. 2015;13(1):1\u201334.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXptlKrtrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 29\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Deposition%20of%20graphene%20nanomaterial%20aerosols%20in%20human%20upper%20airways&amp;journal=J%20Occup%20Environ%20Hyg&amp;volume=13&amp;issue=1&amp;pages=1-34&amp;publication_year=2015&amp;author=Su%2CWC&amp;author=Ku%2CBK&amp;author=Kulkarni%2CP&amp;author=Cheng%2CYS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 29\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">30.<\/span>\n<p id=\"ref-CR30\" class=\"c-article-references__text\">Li B, Yang J, Huang Q, Zhang Y, Peng C, Zhang Y, et al. Biodistribution and pulmonary toxicity of intratracheally instilled graphene oxide in mice. NPG Asia Mater. 2013;5:E44.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtVyrsb%252FP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 30\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fam.2013.7\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 30\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biodistribution%20and%20pulmonary%20toxicity%20of%20intratracheally%20instilled%20graphene%20oxide%20in%20mice&amp;journal=NPG%20Asia%20Mater&amp;volume=5&amp;publication_year=2013&amp;author=Li%2CB&amp;author=Yang%2CJ&amp;author=Huang%2CQ&amp;author=Zhang%2CY&amp;author=Peng%2CC&amp;author=Zhang%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 30\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">31.<\/span>\n<p id=\"ref-CR31\" class=\"c-article-references__text\">Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. In vivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtFahsbo%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 31\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23340196\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 31\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2013.01.001\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 31\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vivo%20biodistribution%20and%20toxicology%20of%20functionalized%20nano-graphene%20oxide%20in%20mice%20after%20oral%20and%20intraperitoneal%20administration&amp;journal=Biomaterials&amp;volume=34&amp;issue=11&amp;pages=2787-95&amp;publication_year=2013&amp;author=Yang%2CK&amp;author=Gong%2CH&amp;author=Shi%2CX&amp;author=Wan%2CJ&amp;author=Zhang%2CY&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 31\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">32.<\/span>\n<p id=\"ref-CR32\" class=\"c-article-references__text\">Wen KP, Chen YC, Chuang CH, Chang HY, Lee CY, Tai NH. Accumulation and toxicity of intravenously-injected functionalized graphene oxide in mice. J Appl Toxicol. 2015;35(10):1211\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtVent7bM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 32\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26099253\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 32\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fjat.3187\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 32\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Accumulation%20and%20toxicity%20of%20intravenously-injected%20functionalized%20graphene%20oxide%20in%20mice&amp;journal=J%20Appl%20Toxicol&amp;volume=35&amp;issue=10&amp;pages=1211-8&amp;publication_year=2015&amp;author=Wen%2CKP&amp;author=Chen%2CYC&amp;author=Chuang%2CCH&amp;author=Chang%2CHY&amp;author=Lee%2CCY&amp;author=Tai%2CNH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 32\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">33.<\/span>\n<p id=\"ref-CR33\" class=\"c-article-references__text\">Kurantowicz N, Strojny B, Sawosz E, Jaworski S, Kutwin M, Grodzik M, et al. Biodistribution of a high dose of diamond, graphite, and graphene oxide nanoparticles after multiple intraperitoneal injections in rats. Nanoscale Res Lett. 2015;10(1):398.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26459428\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 33\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4602018\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 33\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1186%2Fs11671-015-1107-9\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 33\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhs1CnsbfL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 33\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biodistribution%20of%20a%20high%20dose%20of%20diamond%2C%20graphite%2C%20and%20graphene%20oxide%20nanoparticles%20after%20multiple%20intraperitoneal%20injections%20in%20rats&amp;journal=Nanoscale%20Res%20Lett&amp;volume=10&amp;issue=1&amp;publication_year=2015&amp;author=Kurantowicz%2CN&amp;author=Strojny%2CB&amp;author=Sawosz%2CE&amp;author=Jaworski%2CS&amp;author=Kutwin%2CM&amp;author=Grodzik%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 33\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">34.<\/span>\n<p id=\"ref-CR34\" class=\"c-article-references__text\">Yue H, Wei W, Yue Z, Wang B, Luo N, Gao Y, et al. The role of the lateral dimension of graphene oxide in the regulation of cellular responses. Biomaterials. 2012;33(16):4013\u201321.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XjtFyqtb0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 34\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22381473\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 34\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.02.021\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 34\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20role%20of%20the%20lateral%20dimension%20of%20graphene%20oxide%20in%20the%20regulation%20of%20cellular%20responses&amp;journal=Biomaterials&amp;volume=33&amp;issue=16&amp;pages=4013-21&amp;publication_year=2012&amp;author=Yue%2CH&amp;author=Wei%2CW&amp;author=Yue%2CZ&amp;author=Wang%2CB&amp;author=Luo%2CN&amp;author=Gao%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 34\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">35.<\/span>\n<p id=\"ref-CR35\" class=\"c-article-references__text\">Nezakati T, Cousins BG, Seifalian AM. Toxicology of chemically modified graphene-based materials for medical application. Arch Toxicol. 2014;88(11):1987\u20132012.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhsFyitbjF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 35\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25234085\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 35\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4201927\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 35\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs00204-014-1361-0\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 35\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicology%20of%20chemically%20modified%20graphene-based%20materials%20for%20medical%20application&amp;journal=Arch%20Toxicol&amp;volume=88&amp;issue=11&amp;pages=1987-2012&amp;publication_year=2014&amp;author=Nezakati%2CT&amp;author=Cousins%2CBG&amp;author=Seifalian%2CAM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 35\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">36.<\/span>\n<p id=\"ref-CR36\" class=\"c-article-references__text\">Chng ELK, Pumera M. Toxicity of graphene related materials and transition metal dichalcogenides. Rsc Advances. 2015;5(4):3074\u201380.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitVyku7vE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 36\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC4RA12624F\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 36\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20related%20materials%20and%20transition%20metal%20dichalcogenides&amp;journal=Rsc%20Advances&amp;volume=5&amp;issue=4&amp;pages=3074-80&amp;publication_year=2015&amp;author=Chng%2CELK&amp;author=Pumera%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 36\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">37.<\/span>\n<p id=\"ref-CR37\" class=\"c-article-references__text\">Zheng XT, Ananthanarayanan A, Luo KQ, Chen P. Glowing graphene quantum dots and carbon dots: properties, syntheses, and biological applications. Small. 2015;11(1613\u20136829 (Electronic)):1620\u201336.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitFaiur3E\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 37\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25521301\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 37\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201402648\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 37\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Glowing%20graphene%20quantum%20dots%20and%20carbon%20dots%3A%20properties%2C%20syntheses%2C%20and%20biological%20applications&amp;journal=Small&amp;volume=11&amp;issue=1613%E2%80%936829%20%28Electronic%29&amp;pages=1620-36&amp;publication_year=2015&amp;author=Zheng%2CXT&amp;author=Ananthanarayanan%2CA&amp;author=Luo%2CKQ&amp;author=Chen%2CP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 37\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">38.<\/span>\n<p id=\"ref-CR38\" class=\"c-article-references__text\">Caffo M, Merlo L, Marino D, Caruso G. Graphene in neurosurgery: the beginning of a new era. Nanomed. 2015;10:615\u201325.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXjsFCiu7w%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 38\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2217%2Fnnm.14.195\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 38\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20in%20neurosurgery%3A%20the%20beginning%20of%20a%20new%20era&amp;journal=Nanomed&amp;volume=10&amp;pages=615-25&amp;publication_year=2015&amp;author=Caffo%2CM&amp;author=Merlo%2CL&amp;author=Marino%2CD&amp;author=Caruso%2CG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 38\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">39.<\/span>\n<p id=\"ref-CR39\" class=\"c-article-references__text\">Wu SY, An SS, Hulme J. Current applications of graphene oxide in nanomedicine. Int J Nanomed. 2015;10(Spec Iss):9\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XpsV2lsbY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 39\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Current%20applications%20of%20graphene%20oxide%20in%20nanomedicine&amp;journal=Int%20J%20Nanomed&amp;volume=10&amp;issue=Spec%20Iss&amp;pages=9-24&amp;publication_year=2015&amp;author=Wu%2CSY&amp;author=An%2CSS&amp;author=Hulme%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 39\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">40.<\/span>\n<p id=\"ref-CR40\" class=\"c-article-references__text\">Tonelli FMP, Goulart VAM, Gomes KN, Ladeira MS, Santos AK, Lorencon E, et al. Graphene-based nanomaterials: biological and medical applications and toxicity. Nanomedicine. 2015;10(15):2423\u201350.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtlymsbrK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 40\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26244905\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 40\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2217%2Fnnm.15.65\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 40\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene-based%20nanomaterials%3A%20biological%20and%20medical%20applications%20and%20toxicity&amp;journal=Nanomedicine&amp;volume=10&amp;issue=15&amp;pages=2423-50&amp;publication_year=2015&amp;author=Tonelli%2CFMP&amp;author=Goulart%2CVAM&amp;author=Gomes%2CKN&amp;author=Ladeira%2CMS&amp;author=Santos%2CAK&amp;author=Lorencon%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 40\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">41.<\/span>\n<p id=\"ref-CR41\" class=\"c-article-references__text\">Zhou R, Gao H. Cytotoxicity of graphene: recent advances and future perspective. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2014;6(5):452\u201374.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXht1alu7%252FL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 41\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24957946\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 41\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fwnan.1277\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 41\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cytotoxicity%20of%20graphene%3A%20recent%20advances%20and%20future%20perspective&amp;journal=Wiley%20Interdiscip%20Rev%20Nanomed%20Nanobiotechnol&amp;volume=6&amp;issue=5&amp;pages=452-74&amp;publication_year=2014&amp;author=Zhou%2CR&amp;author=Gao%2CH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 41\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">42.<\/span>\n<p id=\"ref-CR42\" class=\"c-article-references__text\">Ema M, Hougaard KS, Kishimoto A, Honda K. Reproductive and developmental toxicity of carbon-based nanomaterials: A literature review. Nanotoxicology. 2015;10:391\u2013412.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26375634\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 42\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2015.1073811\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 42\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XjvFektrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 42\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Reproductive%20and%20developmental%20toxicity%20of%20carbon-based%20nanomaterials%3A%20A%20literature%20review&amp;journal=Nanotoxicology&amp;volume=10&amp;pages=391-412&amp;publication_year=2015&amp;author=Ema%2CM&amp;author=Hougaard%2CKS&amp;author=Kishimoto%2CA&amp;author=Honda%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 42\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">43.<\/span>\n<p id=\"ref-CR43\" class=\"c-article-references__text\">Jastrzebska AM, Olszyna AR. The ecotoxicity of graphene family materials: current status, knowledge gaps and future needs. J Nanopart Res. 2015;17(1):1\u201321.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtFOjt74%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 43\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs11051-014-2817-0\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 43\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20ecotoxicity%20of%20graphene%20family%20materials%3A%20current%20status%2C%20knowledge%20gaps%20and%20future%20needs&amp;journal=J%20Nanopart%20Res&amp;volume=17&amp;issue=1&amp;pages=1-21&amp;publication_year=2015&amp;author=Jastrzebska%2CAM&amp;author=Olszyna%2CAR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 43\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">44.<\/span>\n<p id=\"ref-CR44\" class=\"c-article-references__text\">Xu S, Zhang Z, Chu M. Long-term toxicity of reduced graphene oxide nanosheets: Effects on female mouse reproductive ability and offspring development. Biomaterials. 2015;54:188\u2013200.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXkvFehsbs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 44\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25907052\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 44\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2015.03.015\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 44\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Long-term%20toxicity%20of%20reduced%20graphene%20oxide%20nanosheets%3A%20Effects%20on%20female%20mouse%20reproductive%20ability%20and%20offspring%20development&amp;journal=Biomaterials&amp;volume=54&amp;pages=188-200&amp;publication_year=2015&amp;author=Xu%2CS&amp;author=Zhang%2CZ&amp;author=Chu%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 44\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">45.<\/span>\n<p id=\"ref-CR45\" class=\"c-article-references__text\">Jennifer M, Maciej W. Nanoparticle technology as a double-edged sword: cytotoxic, genotoxic and epigenetic effects on living cells. J Biomater Nanobiotechnol. 2013;4:53\u201363.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXjs1Wjt70%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 45\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.4236%2Fjbnb.2013.41008\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 45\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nanoparticle%20technology%20as%20a%20double-edged%20sword%3A%20cytotoxic%2C%20genotoxic%20and%20epigenetic%20effects%20on%20living%20cells&amp;journal=J%20Biomater%20Nanobiotechnol&amp;volume=4&amp;pages=53-63&amp;publication_year=2013&amp;author=Jennifer%2CM&amp;author=Maciej%2CW\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 45\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">46.<\/span>\n<p id=\"ref-CR46\" class=\"c-article-references__text\">Wu W, Yan L, Wu Q, Li Y, Li Q, Chen S, et al. Evaluation of the toxicity of graphene oxide exposure to the eye. Nanotoxicology. 2016;10(9):1329\u201340.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28Xht1GmtLfK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 46\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=27385068\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 46\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1080%2F17435390.2016.1210692\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 46\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Evaluation%20of%20the%20toxicity%20of%20graphene%20oxide%20exposure%20to%20the%20eye&amp;journal=Nanotoxicology&amp;volume=10&amp;issue=9&amp;pages=1329-40&amp;publication_year=2016&amp;author=Wu%2CW&amp;author=Yan%2CL&amp;author=Wu%2CQ&amp;author=Li%2CY&amp;author=Li%2CQ&amp;author=Chen%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 46\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">47.<\/span>\n<p id=\"ref-CR47\" class=\"c-article-references__text\">Lee K, Jeong Y, Bae J, Seok H, Yang Y, Roh S, et al. The role of surface functionalization on the pulmonary inflammogenicity and translocation into mediastinal lymph nodes of graphene nanoplatelets in rats. Arch Toxicol.2016:1\u201310.<\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">48.<\/span>\n<p id=\"ref-CR48\" class=\"c-article-references__text\">Schinwald A, Murphy F, Askounis A, Koutsos V, Sefiane K, Donaldson K, et al. Minimal oxidation and inflammogenicity of pristine graphene with residence in the lung. Nanotoxicology. 2013;8(8):824\u201332.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23924429\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 48\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2013.831502\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 48\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhvFemtbfE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 48\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Minimal%20oxidation%20and%20inflammogenicity%20of%20pristine%20graphene%20with%20residence%20in%20the%20lung&amp;journal=Nanotoxicology&amp;volume=8&amp;issue=8&amp;pages=824-32&amp;publication_year=2013&amp;author=Schinwald%2CA&amp;author=Murphy%2CF&amp;author=Askounis%2CA&amp;author=Koutsos%2CV&amp;author=Sefiane%2CK&amp;author=Donaldson%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 48\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">49.<\/span>\n<p id=\"ref-CR49\" class=\"c-article-references__text\">Zhang X, Yin J, Peng C, Hu W, Zhu Z, Li W, et al. Distribution and biocompatibility studies of graphene oxide in mice after intravenous administration. Carbon. 2011;49(3):986\u201395.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsFylurzM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 49\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.carbon.2010.11.005\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 49\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Distribution%20and%20biocompatibility%20studies%20of%20graphene%20oxide%20in%20mice%20after%20intravenous%20administration&amp;journal=Carbon&amp;volume=49&amp;issue=3&amp;pages=986-95&amp;publication_year=2011&amp;author=Zhang%2CX&amp;author=Yin%2CJ&amp;author=Peng%2CC&amp;author=Hu%2CW&amp;author=Zhu%2CZ&amp;author=Li%2CW\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 49\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">50.<\/span>\n<p id=\"ref-CR50\" class=\"c-article-references__text\">Singh SK, Singh MK, Nayak MK, Kumari S, Shrivastava S, Gracio JJ, et al. Thrombus inducing property of atomically thin graphene oxide sheets. ACS Nano. 2011;5(6):4987\u201396.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXmtlynu7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 50\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21574593\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 50\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn201092p\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 50\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Thrombus%20inducing%20property%20of%20atomically%20thin%20graphene%20oxide%20sheets&amp;journal=ACS%20Nano&amp;volume=5&amp;issue=6&amp;pages=4987-96&amp;publication_year=2011&amp;author=Singh%2CSK&amp;author=Singh%2CMK&amp;author=Nayak%2CMK&amp;author=Kumari%2CS&amp;author=Shrivastava%2CS&amp;author=Gracio%2CJJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 50\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">51.<\/span>\n<p id=\"ref-CR51\" class=\"c-article-references__text\">Gurunathan S, Han JW, Eppakayala V, Kim JH. Biocompatibility of microbially reduced graphene oxide in primary mouse embryonic fibroblast cells. Colloids Surf B Biointerf. 2013;105:58\u201366.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXktFWlsLw%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 51\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.colsurfb.2012.12.036\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 51\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biocompatibility%20of%20microbially%20reduced%20graphene%20oxide%20in%20primary%20mouse%20embryonic%20fibroblast%20cells&amp;journal=Colloids%20Surf%20B%20Biointerf&amp;volume=105&amp;pages=58-66&amp;publication_year=2013&amp;author=Gurunathan%2CS&amp;author=Han%2CJW&amp;author=Eppakayala%2CV&amp;author=Kim%2CJH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 51\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">52.<\/span>\n<p id=\"ref-CR52\" class=\"c-article-references__text\">Yang K, Wan J, Zhang S, Zhang Y, Lee ST, Liu Z. In vivo pharmacokinetics, long-term biodistribution, and toxicology of PEGylated graphene in mice. ACS Nano. 2011;5(1):516\u201322.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsFKqu7%252FL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 52\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21162527\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 52\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn1024303\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 52\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vivo%20pharmacokinetics%2C%20long-term%20biodistribution%2C%20and%20toxicology%20of%20PEGylated%20graphene%20in%20mice&amp;journal=ACS%20Nano&amp;volume=5&amp;issue=1&amp;pages=516-22&amp;publication_year=2011&amp;author=Yang%2CK&amp;author=Wan%2CJ&amp;author=Zhang%2CS&amp;author=Zhang%2CY&amp;author=Lee%2CST&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 52\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">53.<\/span>\n<p id=\"ref-CR53\" class=\"c-article-references__text\">Fu C, Liu T, Li L, Liu H, Liang Q, Meng X. Effects of graphene oxide on the development of offspring mice in lactation period. Biomaterials. 2015;40:23\u201331.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25498802\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 53\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2014.11.014\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 53\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitVaktbjO\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 53\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effects%20of%20graphene%20oxide%20on%20the%20development%20of%20offspring%20mice%20in%20lactation%20period&amp;journal=Biomaterials&amp;volume=40&amp;pages=23-31&amp;publication_year=2015&amp;author=Fu%2CC&amp;author=Liu%2CT&amp;author=Li%2CL&amp;author=Liu%2CH&amp;author=Liang%2CQ&amp;author=Meng%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 53\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">54.<\/span>\n<p id=\"ref-CR54\" class=\"c-article-references__text\">Hu Q, Jiao B, Shi X, Valle RP, Zuo YY, Hu G. Effects of graphene oxide nanosheets on the ultrastructure and biophysical properties of the pulmonary surfactant film. Nanoscale. 2015;7(43):18025\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhs1anu73L\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 54\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26482703\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 54\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4854527\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 54\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC5NR05401J\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 54\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effects%20of%20graphene%20oxide%20nanosheets%20on%20the%20ultrastructure%20and%20biophysical%20properties%20of%20the%20pulmonary%20surfactant%20film&amp;journal=Nanoscale&amp;volume=7&amp;issue=43&amp;pages=18025-9&amp;publication_year=2015&amp;author=Hu%2CQ&amp;author=Jiao%2CB&amp;author=Shi%2CX&amp;author=Valle%2CRP&amp;author=Zuo%2CYY&amp;author=Hu%2CG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 54\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">55.<\/span>\n<p id=\"ref-CR55\" class=\"c-article-references__text\">Gosens I, Post JA, de la Fonteyne LJ, Jansen EH, Geus JW, Cassee FR, et al. Impact of agglomeration state of nano- and submicron sized gold particles on pulmonary inflammation. Part Fibre Toxicol. 2010;7(1743\u20138977 (Electronic)):1.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Impact%20of%20agglomeration%20state%20of%20nano-%20and%20submicron%20sized%20gold%20particles%20on%20pulmonary%20inflammation&amp;journal=Part%20Fibre%20Toxicol&amp;volume=7&amp;issue=1743%E2%80%938977%20%28Electronic%29&amp;publication_year=2010&amp;author=Gosens%2CI&amp;author=Post%2CJA&amp;author=Fonteyne%2CLJ&amp;author=Jansen%2CEH&amp;author=Geus%2CJW&amp;author=Cassee%2CFR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 55\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">56.<\/span>\n<p id=\"ref-CR56\" class=\"c-article-references__text\">Geiser M, Kreyling WG. Deposition and biokinetics of inhaled nanoparticles. Part Fibre Toxicol. 2010;7:2.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20205860\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 56\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC2826283\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 56\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1186%2F1743-8977-7-2\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 56\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhtlSlsb8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 56\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Deposition%20and%20biokinetics%20of%20inhaled%20nanoparticles&amp;journal=Part%20Fibre%20Toxicol&amp;volume=7&amp;publication_year=2010&amp;author=Geiser%2CM&amp;author=Kreyling%2CWG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 56\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">57.<\/span>\n<p id=\"ref-CR57\" class=\"c-article-references__text\">Ruge CA, Schaefer UF, Herrmann J, Kirch J, Canadas O, Echaide M, et al. The interplay of lung surfactant proteins and lipids assimilates the macrophage clearance of nanoparticles. PLoS One. 2012;7(7):e40775.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtVGmtrrM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 57\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22802970\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 57\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3393659\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 57\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1371%2Fjournal.pone.0040775\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 57\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20interplay%20of%20lung%20surfactant%20proteins%20and%20lipids%20assimilates%20the%20macrophage%20clearance%20of%20nanoparticles&amp;journal=PLoS%20One&amp;volume=7&amp;issue=7&amp;publication_year=2012&amp;author=Ruge%2CCA&amp;author=Schaefer%2CUF&amp;author=Herrmann%2CJ&amp;author=Kirch%2CJ&amp;author=Canadas%2CO&amp;author=Echaide%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 57\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">58.<\/span>\n<p id=\"ref-CR58\" class=\"c-article-references__text\">Morfeld P, Treumann S, Ma-Hock L, Bruch J, Landsiedel R. Deposition behavior of inhaled nanostructured TiO2 in rats: fractions of particle diameter below 100 nm (nanoscale) and the slicing bias of transmission electron microscopy. Inhal Toxicol. 2012;24(1091\u20137691 (Electronic)):939\u201351.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhvVSisL3K\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 58\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23216155\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 58\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F08958378.2012.738256\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 58\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Deposition%20behavior%20of%20inhaled%20nanostructured%20TiO2%20in%20rats%3A%20fractions%20of%20particle%20diameter%20below%20100%20nm%20%28nanoscale%29%20and%20the%20slicing%20bias%20of%20transmission%20electron%20microscopy&amp;journal=Inhal%20Toxicol&amp;volume=24&amp;issue=1091%E2%80%937691%20%28Electronic%29&amp;pages=939-51&amp;publication_year=2012&amp;author=Morfeld%2CP&amp;author=Treumann%2CS&amp;author=Ma-Hock%2CL&amp;author=Bruch%2CJ&amp;author=Landsiedel%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 58\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">59.<\/span>\n<p id=\"ref-CR59\" class=\"c-article-references__text\">Wiemann M, Vennemann A, Sauer UG, Wiench K, Ma-Hock L, Landsiedel R. An in vitro alveolar macrophage assay for predicting the short-term inhalation toxicity of nanomaterials. J Nanobiotechnol. 2016;14(1477\u20133155 (Electronic)):1.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=An%20in%20vitro%20alveolar%20macrophage%20assay%20for%20predicting%20the%20short-term%20inhalation%20toxicity%20of%20nanomaterials&amp;journal=J%20Nanobiotechnol&amp;volume=14&amp;issue=1477%E2%80%933155%20%28Electronic%29&amp;publication_year=2016&amp;author=Wiemann%2CM&amp;author=Vennemann%2CA&amp;author=Sauer%2CUG&amp;author=Wiench%2CK&amp;author=Ma-Hock%2CL&amp;author=Landsiedel%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 59\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">60.<\/span>\n<p id=\"ref-CR60\" class=\"c-article-references__text\">Kreyling WG, Semmler-Behnke M, Takenaka S, M\u00f6ller W. Differences in the biokinetics of inhaled nano- versus micrometer-sized particles. Accounts Chem Res. 2012;46(1520\u20134898 (Electronic)):714\u201322.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Differences%20in%20the%20biokinetics%20of%20inhaled%20nano-%20versus%20micrometer-sized%20particles&amp;journal=Accounts%20Chem%20Res&amp;volume=46&amp;issue=1520%E2%80%934898%20%28Electronic%29&amp;pages=714-22&amp;publication_year=2012&amp;author=Kreyling%2CWG&amp;author=Semmler-Behnke%2CM&amp;author=Takenaka%2CS&amp;author=M%C3%B6ller%2CW\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 60\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">61.<\/span>\n<p id=\"ref-CR61\" class=\"c-article-references__text\">Liang M, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1):1\u201312.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biodistribution%20and%20toxicity%20of%20radio-labeled%20few%20layer%20graphene%20in%20mice%20after%20intratracheal%20instillation&amp;journal=Part%20Fibre%20Toxicol&amp;volume=13&amp;issue=1&amp;pages=1-12&amp;publication_year=2016&amp;author=Liang%2CM&amp;author=Hu%2CM&amp;author=Pan%2CB&amp;author=Xie%2CY&amp;author=Petersen%2CEJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 61\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">62.<\/span>\n<p id=\"ref-CR62\" class=\"c-article-references__text\">Abbott NJ, Patabendige AA, Dolman DE, Yusof SR, Begley DJ. Structure and function of the blood\u2013brain barrier. Neurobiol Dis. 2010;37(1):13\u201325.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXhsVGms73P\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 62\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19664713\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 62\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.nbd.2009.07.030\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 62\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Structure%20and%20function%20of%20the%20blood%E2%80%93brain%20barrier&amp;journal=Neurobiol%20Dis&amp;volume=37&amp;issue=1&amp;pages=13-25&amp;publication_year=2010&amp;author=Abbott%2CNJ&amp;author=Patabendige%2CAA&amp;author=Dolman%2CDE&amp;author=Yusof%2CSR&amp;author=Begley%2CDJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 62\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">63.<\/span>\n<p id=\"ref-CR63\" class=\"c-article-references__text\">Mendonca MC, Soares ES, de Jesus MB, Ceragioli HJ, Ferreira MS, Catharino RR, et al. Reduced graphene oxide induces transient blood\u2013brain barrier opening: an in vivo study. J Nanobiotechnol. 2015;13:78.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1186%2Fs12951-015-0143-z\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 63\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Reduced%20graphene%20oxide%20induces%20transient%20blood%E2%80%93brain%20barrier%20opening%3A%20an%20in%20vivo%20study&amp;journal=J%20Nanobiotechnol&amp;volume=13&amp;publication_year=2015&amp;author=Mendonca%2CMC&amp;author=Soares%2CES&amp;author=Jesus%2CMB&amp;author=Ceragioli%2CHJ&amp;author=Ferreira%2CMS&amp;author=Catharino%2CRR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 63\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">64.<\/span>\n<p id=\"ref-CR64\" class=\"c-article-references__text\">Liu Y, Xu LP, Dai W, Dong H, Wen Y, Zhang X. Graphene quantum dots for the inhibition of beta amyloid aggregation. Nanoscale. 2015;7(45):19060\u20135.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhs1egsrzP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 64\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26515666\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 64\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC5NR06282A\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 64\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20quantum%20dots%20for%20the%20inhibition%20of%20beta%20amyloid%20aggregation&amp;journal=Nanoscale&amp;volume=7&amp;issue=45&amp;pages=19060-5&amp;publication_year=2015&amp;author=Liu%2CY&amp;author=Xu%2CLP&amp;author=Dai%2CW&amp;author=Dong%2CH&amp;author=Wen%2CY&amp;author=Zhang%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 64\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">65.<\/span>\n<p id=\"ref-CR65\" class=\"c-article-references__text\">Mital P, Hinton BT, Dufour JM. The blood-testis and blood-epididymis barriers are more than just their tight junctions. Biol Reprod. 2011;84(5):851\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXltlGju7o%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 65\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21209417\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 65\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4574632\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 65\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1095%2Fbiolreprod.110.087452\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 65\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20blood-testis%20and%20blood-epididymis%20barriers%20are%20more%20than%20just%20their%20tight%20junctions&amp;journal=Biol%20Reprod&amp;volume=84&amp;issue=5&amp;pages=851-8&amp;publication_year=2011&amp;author=Mital%2CP&amp;author=Hinton%2CBT&amp;author=Dufour%2CJM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 65\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">66.<\/span>\n<p id=\"ref-CR66\" class=\"c-article-references__text\">Liang S, Xu S, Zhang D, He J, Chu M. Reproductive toxicity of nanoscale graphene oxide in male mice. Nanotoxicology. 2015;9(1):92\u2013105.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXltFehsL8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 66\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24621344\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 66\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2014.893380\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 66\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Reproductive%20toxicity%20of%20nanoscale%20graphene%20oxide%20in%20male%20mice&amp;journal=Nanotoxicology&amp;volume=9&amp;issue=1&amp;pages=92-105&amp;publication_year=2015&amp;author=Liang%2CS&amp;author=Xu%2CS&amp;author=Zhang%2CD&amp;author=He%2CJ&amp;author=Chu%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 66\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">67.<\/span>\n<p id=\"ref-CR67\" class=\"c-article-references__text\">Buerkithurnherr T, Von MU, Wick P. Knocking at the door of the unborn child: engineered nanoparticles at the human placental barrier. Swiss Med Wkly. 2012;142:w13559.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Knocking%20at%20the%20door%20of%20the%20unborn%20child%3A%20engineered%20nanoparticles%20at%20the%20human%20placental%20barrier&amp;journal=Swiss%20Med%20Wkly&amp;volume=142&amp;publication_year=2012&amp;author=Buerkithurnherr%2CT&amp;author=Von%2CMU&amp;author=Wick%2CP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 67\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">68.<\/span>\n<p id=\"ref-CR68\" class=\"c-article-references__text\">Yang H, Sun C, Fan Z, Tian X, Yan L, Du L, et al. Effects of gestational age and surface modification on materno-fetal transfer of nanoparticles in murine pregnancy. Sci Rep. 2012;2(46):847.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23150793\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 68\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3496197\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 68\">PubMed Central<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effects%20of%20gestational%20age%20and%20surface%20modification%20on%20materno-fetal%20transfer%20of%20nanoparticles%20in%20murine%20pregnancy&amp;journal=Sci%20Rep&amp;volume=2&amp;issue=46&amp;publication_year=2012&amp;author=Yang%2CH&amp;author=Sun%2CC&amp;author=Fan%2CZ&amp;author=Tian%2CX&amp;author=Yan%2CL&amp;author=Du%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 68\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">69.<\/span>\n<p id=\"ref-CR69\" class=\"c-article-references__text\">Huang X, Zhang F, Sun X, Choi KY, Niu G, Zhang G, et al. The genotype-dependent influence of functionalized multiwalled carbon nanotubes on fetal development. Biomaterials. 2014;35(2):856\u201365.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhs1Olt7nL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 69\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24344357\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 69\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4091802\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 69\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2013.10.027\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 69\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20genotype-dependent%20influence%20of%20functionalized%20multiwalled%20carbon%20nanotubes%20on%20fetal%20development&amp;journal=Biomaterials&amp;volume=35&amp;issue=2&amp;pages=856-65&amp;publication_year=2014&amp;author=Huang%2CX&amp;author=Zhang%2CF&amp;author=Sun%2CX&amp;author=Choi%2CKY&amp;author=Niu%2CG&amp;author=Zhang%2CG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 69\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">70.<\/span>\n<p id=\"ref-CR70\" class=\"c-article-references__text\">Qi W, Bi J, Zhang X, Wang J, Wang J, Liu P, et al. Damaging effects of multi-walled carbon nanotubes on pregnant mice with different pregnancy times. Sci Rep. 2014;4(3):doi: 10.1038\/srep04352.<\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">71.<\/span>\n<p id=\"ref-CR71\" class=\"c-article-references__text\">Du J, Wang S, You H, Jiang R, Zhuang C, Zhang X. Developmental toxicity and DNA damage to zebrafish induced by perfluorooctane sulfonate in the presence of ZnO nanoparticles. Environ Toxicol. 2014;31(1522\u20137278 (Electronic)):360\u201371.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25258305\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 71\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Developmental%20toxicity%20and%20DNA%20damage%20to%20zebrafish%20induced%20by%20perfluorooctane%20sulfonate%20in%20the%20presence%20of%20ZnO%20nanoparticles&amp;journal=Environ%20Toxicol&amp;volume=31&amp;issue=1522%E2%80%937278%20%28Electronic%29&amp;pages=360-71&amp;publication_year=2014&amp;author=Du%2CJ&amp;author=Wang%2CS&amp;author=You%2CH&amp;author=Jiang%2CR&amp;author=Zhuang%2CC&amp;author=Zhang%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 71\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">72.<\/span>\n<p id=\"ref-CR72\" class=\"c-article-references__text\">Zhou Z, Son J, Harper B, Zhou Z, Harper S. Influence of surface chemical properties on the toxicity of engineered zinc oxide nanoparticles to embryonic zebrafish. Beilstein J Nanotechnol. 2015;6(2190\u20134286 (Electronic)):1568\u201379.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtleqt73O\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 72\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26425408\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 72\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4578392\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 72\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3762%2Fbjnano.6.160\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 72\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Influence%20of%20surface%20chemical%20properties%20on%20the%20toxicity%20of%20engineered%20zinc%20oxide%20nanoparticles%20to%20embryonic%20zebrafish&amp;journal=Beilstein%20J%20Nanotechnol&amp;volume=6&amp;issue=2190%E2%80%934286%20%28Electronic%29&amp;pages=1568-79&amp;publication_year=2015&amp;author=Zhou%2CZ&amp;author=Son%2CJ&amp;author=Harper%2CB&amp;author=Zhou%2CZ&amp;author=Harper%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 72\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">73.<\/span>\n<p id=\"ref-CR73\" class=\"c-article-references__text\">Rollerova E, Tulinska J, Liskova A, Kuricova M, Kovriznych J, Mlynarcikova A, et al. Titanium dioxide nanoparticles: some aspects of toxicity\/focus on the development. Endocr Reg. 2014;49(1210\u20130668 (Print)):97\u2013112.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Titanium%20dioxide%20nanoparticles%3A%20some%20aspects%20of%20toxicity%2Ffocus%20on%20the%20development&amp;journal=Endocr%20Reg&amp;volume=49&amp;issue=1210%E2%80%930668%20%28Print%29&amp;pages=97-112&amp;publication_year=2014&amp;author=Rollerova%2CE&amp;author=Tulinska%2CJ&amp;author=Liskova%2CA&amp;author=Kuricova%2CM&amp;author=Kovriznych%2CJ&amp;author=Mlynarcikova%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 73\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">74.<\/span>\n<p id=\"ref-CR74\" class=\"c-article-references__text\">Warheit DB, Boatman R, Brown SC. Developmental toxicity studies with 6 forms of titanium dioxide test materials (3 pigment-different grade &amp; 3 nanoscale) demonstrate an absence of effects in orally-exposed rats. Reg Toxicol Pharmacol. 2015;73(1096\u20130295 (Electronic)):887\u201396.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhs1Cqu7vL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 74\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.yrtph.2015.09.032\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 74\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Developmental%20toxicity%20studies%20with%206%20forms%20of%20titanium%20dioxide%20test%20materials%20%283%20pigment-different%20grade%20%26%203%20nanoscale%29%20demonstrate%20an%20absence%20of%20effects%20in%20orally-exposed%20rats&amp;journal=Reg%20Toxicol%20Pharmacol&amp;volume=73&amp;issue=1096%E2%80%930295%20%28Electronic%29&amp;pages=887-96&amp;publication_year=2015&amp;author=Warheit%2CDB&amp;author=Boatman%2CR&amp;author=Brown%2CSC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 74\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">75.<\/span>\n<p id=\"ref-CR75\" class=\"c-article-references__text\">Ema M, Gamo M, Honda K. Developmental toxicity of engineered nanomaterials in rodents. Toxicol Appl Pharmacol. 2015;299(1096\u20130333 (Electronic)):47\u201352.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26721308\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 75\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Developmental%20toxicity%20of%20engineered%20nanomaterials%20in%20rodents&amp;journal=Toxicol%20Appl%20Pharmacol&amp;volume=299&amp;issue=1096%E2%80%930333%20%28Electronic%29&amp;pages=47-52&amp;publication_year=2015&amp;author=Ema%2CM&amp;author=Gamo%2CM&amp;author=Honda%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 75\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">76.<\/span>\n<p id=\"ref-CR76\" class=\"c-article-references__text\">Li Z, Geng Y, Zhang X, Qi W, Fan Q, Li Y, et al. Biodistribution of co-exposure to multi-walled carbon nanotubes and graphene oxide nanoplatelets radiotracers. J Nanopart Res. 2011;13(7):2939\u201347.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1007%2Fs11051-010-0175-0\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 76\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXns1Ojsrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 76\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biodistribution%20of%20co-exposure%20to%20multi-walled%20carbon%20nanotubes%20and%20graphene%20oxide%20nanoplatelets%20radiotracers&amp;journal=J%20Nanopart%20Res&amp;volume=13&amp;issue=7&amp;pages=2939-47&amp;publication_year=2011&amp;author=Li%2CZ&amp;author=Geng%2CY&amp;author=Zhang%2CX&amp;author=Qi%2CW&amp;author=Fan%2CQ&amp;author=Li%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 76\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">77.<\/span>\n<p id=\"ref-CR77\" class=\"c-article-references__text\">Wang Y, Li Z, Hu D, Lin CT, Li J, Lin Y. Aptamer\/graphene oxide nanocomplex for in situ molecular probing in living cells. J Am Chem Soc. 2010;132(27):9274\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXnvVejtLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 77\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20565095\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 77\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fja103169v\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 77\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Aptamer%2Fgraphene%20oxide%20nanocomplex%20for%20in%20situ%20molecular%20probing%20in%20living%20cells&amp;journal=J%20Am%20Chem%20Soc&amp;volume=132&amp;issue=27&amp;pages=9274-6&amp;publication_year=2010&amp;author=Wang%2CY&amp;author=Li%2CZ&amp;author=Hu%2CD&amp;author=Lin%2CCT&amp;author=Li%2CJ&amp;author=Lin%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 77\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">78.<\/span>\n<p id=\"ref-CR78\" class=\"c-article-references__text\">Liu JH, Yang ST, Wang H, Chang Y, Cao A, Liu Y. Effect of size and dose on the biodistribution of graphene oxide in mice. Nanomedicine. 2012;7(12):1801\u201312.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhvVCksbvN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 78\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22830500\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 78\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2217%2Fnnm.12.60\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 78\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effect%20of%20size%20and%20dose%20on%20the%20biodistribution%20of%20graphene%20oxide%20in%20mice&amp;journal=Nanomedicine&amp;volume=7&amp;issue=12&amp;pages=1801-12&amp;publication_year=2012&amp;author=Liu%2CJH&amp;author=Yang%2CST&amp;author=Wang%2CH&amp;author=Chang%2CY&amp;author=Cao%2CA&amp;author=Liu%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 78\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">79.<\/span>\n<p id=\"ref-CR79\" class=\"c-article-references__text\">Zhang S, Yang K, Feng L, Liu Z. In vitro and in vivo behaviors of dextran functionalized graphene. Carbon. 2011;49(12):4040\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXotlChu7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 79\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.carbon.2011.05.056\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 79\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vitro%20and%20in%20vivo%20behaviors%20of%20dextran%20functionalized%20graphene&amp;journal=Carbon&amp;volume=49&amp;issue=12&amp;pages=4040-9&amp;publication_year=2011&amp;author=Zhang%2CS&amp;author=Yang%2CK&amp;author=Feng%2CL&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 79\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">80.<\/span>\n<p id=\"ref-CR80\" class=\"c-article-references__text\">Hirn S, Semmler-Behnke M, Schleh C, Wenk A, Lipka J, Schaffler M, et al. Particle size-dependent and surface charge-dependent biodistribution of gold nanoparticles after intravenous administration. Eur J Pharm Biopharm. 2011;77(3):407\u201316.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXisFWlsrw%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 80\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21195759\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 80\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.ejpb.2010.12.029\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 80\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Particle%20size-dependent%20and%20surface%20charge-dependent%20biodistribution%20of%20gold%20nanoparticles%20after%20intravenous%20administration&amp;journal=Eur%20J%20Pharm%20Biopharm&amp;volume=77&amp;issue=3&amp;pages=407-16&amp;publication_year=2011&amp;author=Hirn%2CS&amp;author=Semmler-Behnke%2CM&amp;author=Schleh%2CC&amp;author=Wenk%2CA&amp;author=Lipka%2CJ&amp;author=Schaffler%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 80\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">81.<\/span>\n<p id=\"ref-CR81\" class=\"c-article-references__text\">Li B, Zhang XY, Yang JZ, Zhang YJ, Li WX, Fan CH, et al. Influence of polyethylene glycol coating on biodistribution and toxicity of nanoscale graphene oxide in mice after intravenous injection. Int J Nanomedicine. 2014;9:4697\u2013707.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25356071\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 81\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4207078\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 81\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2147%2FIJN.S66591\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 81\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitFOiurbO\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 81\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Influence%20of%20polyethylene%20glycol%20coating%20on%20biodistribution%20and%20toxicity%20of%20nanoscale%20graphene%20oxide%20in%20mice%20after%20intravenous%20injection&amp;journal=Int%20J%20Nanomedicine&amp;volume=9&amp;pages=4697-707&amp;publication_year=2014&amp;author=Li%2CB&amp;author=Zhang%2CXY&amp;author=Yang%2CJZ&amp;author=Zhang%2CYJ&amp;author=Li%2CWX&amp;author=Fan%2CCH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 81\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">82.<\/span>\n<p id=\"ref-CR82\" class=\"c-article-references__text\">Zhang Y, Ali SF, Dervishi E, Xu Y, Li Z, Casciano D, et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. ACS Nano. 2010;4(6):3181\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXmtFKlsLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 82\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20481456\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 82\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn1007176\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 82\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cytotoxicity%20effects%20of%20graphene%20and%20single-wall%20carbon%20nanotubes%20in%20neural%20phaeochromocytoma-derived%20PC12%20cells&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=6&amp;pages=3181-6&amp;publication_year=2010&amp;author=Zhang%2CY&amp;author=Ali%2CSF&amp;author=Dervishi%2CE&amp;author=Xu%2CY&amp;author=Li%2CZ&amp;author=Casciano%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 82\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">83.<\/span>\n<p id=\"ref-CR83\" class=\"c-article-references__text\">Li Y, Liu Y, Fu Y, Wei T, Le Guyader L, Gao G, et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. Biomaterials. 2012;33(2):402\u201311.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22019121\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 83\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2011.09.091\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 83\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhsVWkt7vM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 83\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20triggering%20of%20apoptosis%20in%20macrophages%20by%20pristine%20graphene%20through%20the%20MAPK%20and%20TGF-beta%20signaling%20pathways&amp;journal=Biomaterials&amp;volume=33&amp;issue=2&amp;pages=402-11&amp;publication_year=2012&amp;author=Li%2CY&amp;author=Liu%2CY&amp;author=Fu%2CY&amp;author=Wei%2CT&amp;author=Guyader%2CL&amp;author=Gao%2CG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 83\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">84.<\/span>\n<p id=\"ref-CR84\" class=\"c-article-references__text\">Sydlik SA, Jhunjhunwala S, Webber MJ, Anderson DG, Langer R. In vivo compatibility of graphene oxide with differing oxidation states. ACS Nano. 2015;9(4):3866\u201374.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXmtF2nsrg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 84\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25849074\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 84\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4825180\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 84\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facsnano.5b01290\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 84\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vivo%20compatibility%20of%20graphene%20oxide%20with%20differing%20oxidation%20states&amp;journal=ACS%20Nano&amp;volume=9&amp;issue=4&amp;pages=3866-74&amp;publication_year=2015&amp;author=Sydlik%2CSA&amp;author=Jhunjhunwala%2CS&amp;author=Webber%2CMJ&amp;author=Anderson%2CDG&amp;author=Langer%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 84\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">85.<\/span>\n<p id=\"ref-CR85\" class=\"c-article-references__text\">Mytych J, Wnuk M. Nanoparticle technology as a double-edged sword: cytotoxic, genotoxic and epigenetic effects on living cells. J Biomater Nanobiotechnol. 2013;4:53\u201363.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.4236%2Fjbnb.2013.41008\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 85\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXjs1Wjt70%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 85\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nanoparticle%20technology%20as%20a%20double-edged%20sword%3A%20cytotoxic%2C%20genotoxic%20and%20epigenetic%20effects%20on%20living%20cells&amp;journal=J%20Biomater%20Nanobiotechnol&amp;volume=4&amp;pages=53-63&amp;publication_year=2013&amp;author=Mytych%2CJ&amp;author=Wnuk%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 85\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">86.<\/span>\n<p id=\"ref-CR86\" class=\"c-article-references__text\">Peng C, Hu W, Zhou Y, Fan C, Huang Q. Intracellular imaging with a graphene-based fluorescent probe. Small. 2010;6(15):1686\u201392.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXpsVCltrY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 86\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20602429\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 86\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201000560\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 86\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Intracellular%20imaging%20with%20a%20graphene-based%20fluorescent%20probe&amp;journal=Small&amp;volume=6&amp;issue=15&amp;pages=1686-92&amp;publication_year=2010&amp;author=Peng%2CC&amp;author=Hu%2CW&amp;author=Zhou%2CY&amp;author=Fan%2CC&amp;author=Huang%2CQ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 86\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">87.<\/span>\n<p id=\"ref-CR87\" class=\"c-article-references__text\">Wang D, Zhu L, Chen JF, Dai L. Can graphene quantum dots cause DNA damage in cells? Nanoscale. 2015;7(21):9894\u2013901.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXntFCht7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 87\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25967921\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 87\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC5NR01734C\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 87\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Can%20graphene%20quantum%20dots%20cause%20DNA%20damage%20in%20cells%3F&amp;journal=Nanoscale&amp;volume=7&amp;issue=21&amp;pages=9894-901&amp;publication_year=2015&amp;author=Wang%2CD&amp;author=Zhu%2CL&amp;author=Chen%2CJF&amp;author=Dai%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 87\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">88.<\/span>\n<p id=\"ref-CR88\" class=\"c-article-references__text\">Mu Q, Su G, Li L, Gilbertson BO, Yu LH, Zhang Q, et al. Size-dependent cell uptake of protein-coated graphene oxide nanosheets. ACS Appl Mater Interf. 2012;4(4):2259\u201366.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xjs1CmsLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 88\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fam300253c\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 88\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Size-dependent%20cell%20uptake%20of%20protein-coated%20graphene%20oxide%20nanosheets&amp;journal=ACS%20Appl%20Mater%20Interf&amp;volume=4&amp;issue=4&amp;pages=2259-66&amp;publication_year=2012&amp;author=Mu%2CQ&amp;author=Su%2CG&amp;author=Li%2CL&amp;author=Gilbertson%2CBO&amp;author=Yu%2CLH&amp;author=Zhang%2CQ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 88\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">89.<\/span>\n<p id=\"ref-CR89\" class=\"c-article-references__text\">Xu M, Zhu J, Wang F, Xiong Y, Wu Y, Wang Q, et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification: poly(acrylic acid)-functionalization is superior to PEGylation. ACS Nano. 2016;10:3267\u201381.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XitFeqsLg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 89\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26855010\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 89\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facsnano.6b00539\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 89\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Improved%20in%20vitro%20and%20in%20vivo%20biocompatibility%20of%20graphene%20oxide%20through%20surface%20modification%3A%20poly%28acrylic%20acid%29-functionalization%20is%20superior%20to%20PEGylation&amp;journal=ACS%20Nano&amp;volume=10&amp;pages=3267-81&amp;publication_year=2016&amp;author=Xu%2CM&amp;author=Zhu%2CJ&amp;author=Wang%2CF&amp;author=Xiong%2CY&amp;author=Wu%2CY&amp;author=Wang%2CQ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 89\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">90.<\/span>\n<p id=\"ref-CR90\" class=\"c-article-references__text\">Kostarelos K, Novoselov KS. Materials science. Exploring the interface of graphene and biology. Science. 2014;344(6181):261\u20133.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXnslyisLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 90\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24744363\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 90\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1126%2Fscience.1246736\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 90\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Materials%20science.%20Exploring%20the%20interface%20of%20graphene%20and%20biology&amp;journal=Science&amp;volume=344&amp;issue=6181&amp;pages=261-3&amp;publication_year=2014&amp;author=Kostarelos%2CK&amp;author=Novoselov%2CKS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 90\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">91.<\/span>\n<p id=\"ref-CR91\" class=\"c-article-references__text\">Sasidharan A, Panchakarla LS, Chandran P, Menon D, Nair S, Rao CN, et al. Differential nano-bio interactions and toxicity effects of pristine versus functionalized graphene. Nanoscale. 2011;3(6):2461\u20134.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXotFOlsbc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 91\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21562671\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 91\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc1nr10172b\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 91\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Differential%20nano-bio%20interactions%20and%20toxicity%20effects%20of%20pristine%20versus%20functionalized%20graphene&amp;journal=Nanoscale&amp;volume=3&amp;issue=6&amp;pages=2461-4&amp;publication_year=2011&amp;author=Sasidharan%2CA&amp;author=Panchakarla%2CLS&amp;author=Chandran%2CP&amp;author=Menon%2CD&amp;author=Nair%2CS&amp;author=Rao%2CCN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 91\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">92.<\/span>\n<p id=\"ref-CR92\" class=\"c-article-references__text\">Li Y, Yuan H, von dem Bussche A, Creighton M, Hurt RH, Kane AB, et al. Graphene microsheets enter cells through spontaneous membrane penetration at edge asperities and corner site. Proc Natl Acad Sci U S A. 2013;110(1091\u20136490 (Electronic)):12295\u2013300.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXht1emu7vL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 92\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23840061\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 92\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3725082\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 92\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1073%2Fpnas.1222276110\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 92\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20microsheets%20enter%20cells%20through%20spontaneous%20membrane%20penetration%20at%20edge%20asperities%20and%20corner%20site&amp;journal=Proc%20Natl%20Acad%20Sci%20U%20S%20A&amp;volume=110&amp;issue=1091%E2%80%936490%20%28Electronic%29&amp;pages=12295-300&amp;publication_year=2013&amp;author=Li%2CY&amp;author=Yuan%2CH&amp;author=von%20dem%20Bussche%2CA&amp;author=Creighton%2CM&amp;author=Hurt%2CRH&amp;author=Kane%2CAB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 92\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">93.<\/span>\n<p id=\"ref-CR93\" class=\"c-article-references__text\">Qu G, Liu S, Zhang S, Wang L, Wang X, Sun B, et al. Graphene oxide induces toll-like receptor 4 (TLR4)-dependent necrosis in macrophages. ACS Nano. 2013;7(7):5732\u201345.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXovFWktrk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 93\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23734789\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 93\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn402330b\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 93\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20induces%20toll-like%20receptor%204%20%28TLR4%29-dependent%20necrosis%20in%20macrophages&amp;journal=ACS%20Nano&amp;volume=7&amp;issue=7&amp;pages=5732-45&amp;publication_year=2013&amp;author=Qu%2CG&amp;author=Liu%2CS&amp;author=Zhang%2CS&amp;author=Wang%2CL&amp;author=Wang%2CX&amp;author=Sun%2CB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 93\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">94.<\/span>\n<p id=\"ref-CR94\" class=\"c-article-references__text\">Ma J, Liu R, Wang X, Liu Q, Chen Y, Valle RP, et al. Crucial role of lateral size for graphene oxide in activating macrophages and stimulating Pro-inflammatory responses in cells and animals. ACS Nano. 2015;9(10):10498\u2013515.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhsFagtLvJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 94\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26389709\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 94\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facsnano.5b04751\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 94\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Crucial%20role%20of%20lateral%20size%20for%20graphene%20oxide%20in%20activating%20macrophages%20and%20stimulating%20Pro-inflammatory%20responses%20in%20cells%20and%20animals&amp;journal=ACS%20Nano&amp;volume=9&amp;issue=10&amp;pages=10498-515&amp;publication_year=2015&amp;author=Ma%2CJ&amp;author=Liu%2CR&amp;author=Wang%2CX&amp;author=Liu%2CQ&amp;author=Chen%2CY&amp;author=Valle%2CRP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 94\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">95.<\/span>\n<p id=\"ref-CR95\" class=\"c-article-references__text\">Mao L, Hu M, Pan B, Xie Y, Petersen EJ. Biodistribution and toxicity of radio-labeled few layer graphene in mice after intratracheal instillation. Part Fibre Toxicol. 2016;13(1743\u20138977 (Electronic)):1.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biodistribution%20and%20toxicity%20of%20radio-labeled%20few%20layer%20graphene%20in%20mice%20after%20intratracheal%20instillation&amp;journal=Part%20Fibre%20Toxicol&amp;volume=13&amp;issue=1743%E2%80%938977%20%28Electronic%29&amp;publication_year=2016&amp;author=Mao%2CL&amp;author=Hu%2CM&amp;author=Pan%2CB&amp;author=Xie%2CY&amp;author=Petersen%2CEJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 95\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">96.<\/span>\n<p id=\"ref-CR96\" class=\"c-article-references__text\">Park EJ, Lee SJ, Lee K, Choi YC, Lee BS, Lee GH, et al. Pulmonary persistence of graphene nanoplatelets may disturb physiological and immunological homeostasis. J Appl Toxicol. 2016.<\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">97.<\/span>\n<p id=\"ref-CR97\" class=\"c-article-references__text\">Kim JK, Shin JH, Lee JS, Hwang JH, Lee JH, Baek JE, et al. 28-Day inhalation toxicity of graphene nanoplatelets in Sprague\u2013Dawley rats. Nanotoxicology. 2016;10(7):891\u2013901.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XisFGktrY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 97\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26691980\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 97\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2015.1133865\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 97\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=28-Day%20inhalation%20toxicity%20of%20graphene%20nanoplatelets%20in%20Sprague%E2%80%93Dawley%20rats&amp;journal=Nanotoxicology&amp;volume=10&amp;issue=7&amp;pages=891-901&amp;publication_year=2016&amp;author=Kim%2CJK&amp;author=Shin%2CJH&amp;author=Lee%2CJS&amp;author=Hwang%2CJH&amp;author=Lee%2CJH&amp;author=Baek%2CJE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 97\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">98.<\/span>\n<p id=\"ref-CR98\" class=\"c-article-references__text\">Singh SK, Singh MK, Kulkarni PP, Sonkar VK, Gracio JJ, Dash D. Amine-modified graphene: thrombo-protective safer alternative to graphene oxide for biomedical applications. ACS Nano. 2012;6(3):2731\u201340.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XjtVGhsrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 98\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22376049\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 98\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn300172t\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 98\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Amine-modified%20graphene%3A%20thrombo-protective%20safer%20alternative%20to%20graphene%20oxide%20for%20biomedical%20applications&amp;journal=ACS%20Nano&amp;volume=6&amp;issue=3&amp;pages=2731-40&amp;publication_year=2012&amp;author=Singh%2CSK&amp;author=Singh%2CMK&amp;author=Kulkarni%2CPP&amp;author=Sonkar%2CVK&amp;author=Gracio%2CJJ&amp;author=Dash%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 98\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">99.<\/span>\n<p id=\"ref-CR99\" class=\"c-article-references__text\">Duch MC, Budinger GR, Liang YT, Soberanes S, Urich D, Chiarella SE, et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. Nano Lett. 2011;11(12):5201\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22023654\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 99\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3237757\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 99\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnl202515a\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 99\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhtlKks7rL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 99\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Minimizing%20oxidation%20and%20stable%20nanoscale%20dispersion%20improves%20the%20biocompatibility%20of%20graphene%20in%20the%20lung&amp;journal=Nano%20Lett&amp;volume=11&amp;issue=12&amp;pages=5201-7&amp;publication_year=2011&amp;author=Duch%2CMC&amp;author=Budinger%2CGR&amp;author=Liang%2CYT&amp;author=Soberanes%2CS&amp;author=Urich%2CD&amp;author=Chiarella%2CSE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 99\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">100.<\/span>\n<p id=\"ref-CR100\" class=\"c-article-references__text\">Wang X, Duch MC, Mansukhani N, Ji Z, Liao YP, Wang M, et al. Use of a pro-fibrogenic mechanism-based predictive toxicological approach for tiered testing and decision analysis of carbonaceous nanomaterials. ACS Nano. 2015;9(1936-086X (Electronic)):3032\u201343.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXitVers70%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 100\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25646681\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 100\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4539018\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 100\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn507243w\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 100\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Use%20of%20a%20pro-fibrogenic%20mechanism-based%20predictive%20toxicological%20approach%20for%20tiered%20testing%20and%20decision%20analysis%20of%20carbonaceous%20nanomaterials&amp;journal=ACS%20Nano&amp;volume=9&amp;issue=1936-086X%20%28Electronic%29&amp;pages=3032-43&amp;publication_year=2015&amp;author=Wang%2CX&amp;author=Duch%2CMC&amp;author=Mansukhani%2CN&amp;author=Ji%2CZ&amp;author=Liao%2CYP&amp;author=Wang%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 100\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">101.<\/span>\n<p id=\"ref-CR101\" class=\"c-article-references__text\">Sawosz E, Jaworski S, Kutwin M, Hotowy A, Wierzbicki M, Grodzik M, et al. Toxicity of pristine graphene in experiments in a chicken embryo model. Int J Nanomed. 2014;9:3913\u201322.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhvFyktrrK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 101\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20pristine%20graphene%20in%20experiments%20in%20a%20chicken%20embryo%20model&amp;journal=Int%20J%20Nanomed&amp;volume=9&amp;pages=3913-22&amp;publication_year=2014&amp;author=Sawosz%2CE&amp;author=Jaworski%2CS&amp;author=Kutwin%2CM&amp;author=Hotowy%2CA&amp;author=Wierzbicki%2CM&amp;author=Grodzik%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 101\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">102.<\/span>\n<p id=\"ref-CR102\" class=\"c-article-references__text\">Liu XT, Mu XY, Wu XL, Meng LX, Guan WB, Ma YQ, et al. Toxicity of multi-walled carbon nanotubes, graphene oxide, and reduced graphene oxide to zebrafish embryos. Biomed Environ Sci. 2014;27(9):676\u201383.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25256857\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 102\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20multi-walled%20carbon%20nanotubes%2C%20graphene%20oxide%2C%20and%20reduced%20graphene%20oxide%20to%20zebrafish%20embryos&amp;journal=Biomed%20Environ%20Sci&amp;volume=27&amp;issue=9&amp;pages=676-83&amp;publication_year=2014&amp;author=Liu%2CXT&amp;author=Mu%2CXY&amp;author=Wu%2CXL&amp;author=Meng%2CLX&amp;author=Guan%2CWB&amp;author=Ma%2CYQ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 102\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">103.<\/span>\n<p id=\"ref-CR103\" class=\"c-article-references__text\">Chen Y, Hu X, Sun J, Zhou Q. Specific nanotoxicity of graphene oxide during zebrafish embryogenesis. Nanotoxicology. 2016;10(1):42\u201352.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28Xjs12mtrc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 103\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25704117\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 103\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Specific%20nanotoxicity%20of%20graphene%20oxide%20during%20zebrafish%20embryogenesis&amp;journal=Nanotoxicology&amp;volume=10&amp;issue=1&amp;pages=42-52&amp;publication_year=2016&amp;author=Chen%2CY&amp;author=Hu%2CX&amp;author=Sun%2CJ&amp;author=Zhou%2CQ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 103\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">104.<\/span>\n<p id=\"ref-CR104\" class=\"c-article-references__text\">Sasidharan A, Panchakarla LS, Sadanandan AR, Ashokan A, Chandran P, Girish CM, et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. Smal. 2012;8(8):1251\u201363.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xitlyguro%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 104\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201102393\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 104\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Hemocompatibility%20and%20macrophage%20response%20of%20pristine%20and%20functionalized%20graphene&amp;journal=Smal&amp;volume=8&amp;issue=8&amp;pages=1251-63&amp;publication_year=2012&amp;author=Sasidharan%2CA&amp;author=Panchakarla%2CLS&amp;author=Sadanandan%2CAR&amp;author=Ashokan%2CA&amp;author=Chandran%2CP&amp;author=Girish%2CCM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 104\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">105.<\/span>\n<p id=\"ref-CR105\" class=\"c-article-references__text\">Ding Z, Zhang Z, Ma H, Chen Y. In vitro hemocompatibility and toxic mechanism of graphene oxide on human peripheral blood T lymphocytes and serum albumin. ACS Appl Mater Interf. 2014;6(22):19797\u2013807.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhvVKrs7jF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 105\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fam505084s\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 105\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vitro%20hemocompatibility%20and%20toxic%20mechanism%20of%20graphene%20oxide%20on%20human%20peripheral%20blood%20T%20lymphocytes%20and%20serum%20albumin&amp;journal=ACS%20Appl%20Mater%20Interf&amp;volume=6&amp;issue=22&amp;pages=19797-807&amp;publication_year=2014&amp;author=Ding%2CZ&amp;author=Zhang%2CZ&amp;author=Ma%2CH&amp;author=Chen%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 105\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">106.<\/span>\n<p id=\"ref-CR106\" class=\"c-article-references__text\">Liao KH, Lin YS, Macosko CW, Haynes CL. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. ACS Appl Mater Interfaces. 2011;3(7):2607\u201315.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXotlGhsL8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 106\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21650218\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 106\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fam200428v\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 106\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cytotoxicity%20of%20graphene%20oxide%20and%20graphene%20in%20human%20erythrocytes%20and%20skin%20fibroblasts&amp;journal=ACS%20Appl%20Mater%20Interfaces&amp;volume=3&amp;issue=7&amp;pages=2607-15&amp;publication_year=2011&amp;author=Liao%2CKH&amp;author=Lin%2CYS&amp;author=Macosko%2CCW&amp;author=Haynes%2CCL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 106\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">107.<\/span>\n<p id=\"ref-CR107\" class=\"c-article-references__text\">Kouhi SMM, Lahouti M, Ganjeali A, Entezari MH. Long-term exposure of rapeseed (Brassica napus L.) to ZnO nanoparticles: anatomical and ultrastructural responses. Environ Sci Pollut Res. 2015;22(1614\u20137499 (Electronic)):10733\u201343.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1007%2Fs11356-015-4306-0\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 107\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXkvVKgsrc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 107\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Long-term%20exposure%20of%20rapeseed%20%28Brassica%20napus%20L.%29%20to%20ZnO%20nanoparticles%3A%20anatomical%20and%20ultrastructural%20responses&amp;journal=Environ%20Sci%20Pollut%20Res&amp;volume=22&amp;issue=1614%E2%80%937499%20%28Electronic%29&amp;pages=10733-43&amp;publication_year=2015&amp;author=Kouhi%2CSMM&amp;author=Lahouti%2CM&amp;author=Ganjeali%2CA&amp;author=Entezari%2CMH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 107\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">108.<\/span>\n<p id=\"ref-CR108\" class=\"c-article-references__text\">Vales G, Rubio L, Marcos R. Long-term exposures to low doses of titanium dioxide nanoparticles induce cell transformation, but not genotoxic damage in BEAS-2B cells. Nanotoxicology. 2015;9(1743\u20135404 (Electronic)):568\u201378.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXht1ajsb7F\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 108\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25238462\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 108\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2014.957252\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 108\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Long-term%20exposures%20to%20low%20doses%20of%20titanium%20dioxide%20nanoparticles%20induce%20cell%20transformation%2C%20but%20not%20genotoxic%20damage%20in%20BEAS-2B%20cells&amp;journal=Nanotoxicology&amp;volume=9&amp;issue=1743%E2%80%935404%20%28Electronic%29&amp;pages=568-78&amp;publication_year=2015&amp;author=Vales%2CG&amp;author=Rubio%2CL&amp;author=Marcos%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 108\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">109.<\/span>\n<p id=\"ref-CR109\" class=\"c-article-references__text\">Sancey L, Kotb S, Truillet C, Appaix F, Marais A, Thomas E, et al. Long-term in vivo clearance of gadolinium-based AGuIX nanoparticles and their biocompatibility after systemic injection. ACS Nano. 2015;9(1936-086X (Electronic)):2477\u201388.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXjtF2rsr0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 109\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25703068\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 109\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facsnano.5b00552\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 109\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Long-term%20in%20vivo%20clearance%20of%20gadolinium-based%20AGuIX%20nanoparticles%20and%20their%20biocompatibility%20after%20systemic%20injection&amp;journal=ACS%20Nano&amp;volume=9&amp;issue=1936-086X%20%28Electronic%29&amp;pages=2477-88&amp;publication_year=2015&amp;author=Sancey%2CL&amp;author=Kotb%2CS&amp;author=Truillet%2CC&amp;author=Appaix%2CF&amp;author=Marais%2CA&amp;author=Thomas%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 109\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">110.<\/span>\n<p id=\"ref-CR110\" class=\"c-article-references__text\">Chatterjee N, Eom HJ, Choi J. A systems toxicology approach to the surface functionality control of graphene-cell interactions. Biomaterials. 2014;35:1109\u201327.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhslCntb%252FK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 110\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24211078\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 110\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2013.09.108\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 110\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=A%20systems%20toxicology%20approach%20to%20the%20surface%20functionality%20control%20of%20graphene-cell%20interactions&amp;journal=Biomaterials&amp;volume=35&amp;pages=1109-27&amp;publication_year=2014&amp;author=Chatterjee%2CN&amp;author=Eom%2CHJ&amp;author=Choi%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 110\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">111.<\/span>\n<p id=\"ref-CR111\" class=\"c-article-references__text\">Jaworski S, Sawosz E, Grodzik M, Winnicka A, Prasek M, Wierzbicki M, et al. In vitro evaluation of the effects of graphene platelets on glioblastoma multiforme cells. Int J Nanomed. 2013;8:413\u201320.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vitro%20evaluation%20of%20the%20effects%20of%20graphene%20platelets%20on%20glioblastoma%20multiforme%20cells&amp;journal=Int%20J%20Nanomed&amp;volume=8&amp;pages=413-20&amp;publication_year=2013&amp;author=Jaworski%2CS&amp;author=Sawosz%2CE&amp;author=Grodzik%2CM&amp;author=Winnicka%2CA&amp;author=Prasek%2CM&amp;author=Wierzbicki%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 111\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">112.<\/span>\n<p id=\"ref-CR112\" class=\"c-article-references__text\">Liu Y, Luo Y, Wu J, Wang Y, Yang X, Yang R, et al. Graphene oxide can induce in vitro and in vivo mutagenesis. Sci Rep. 2013;3:3469.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24326739\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 112\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20can%20induce%20in%20vitro%20and%20in%20vivo%20mutagenesis&amp;journal=Sci%20Rep&amp;volume=3&amp;publication_year=2013&amp;author=Liu%2CY&amp;author=Luo%2CY&amp;author=Wu%2CJ&amp;author=Wang%2CY&amp;author=Yang%2CX&amp;author=Yang%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 112\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">113.<\/span>\n<p id=\"ref-CR113\" class=\"c-article-references__text\">Vallabani NV, Mittal S, Shukla RK, Pandey AK, Dhakate SR, Pasricha R, et al. Toxicity of graphene in normal human lung cells (BEAS-2B). J Biomed Nanotechnol. 2011;7(1):106\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXjslCjsLY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 113\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21485826\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 113\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1166%2Fjbn.2011.1224\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 113\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20in%20normal%20human%20lung%20cells%20%28BEAS-2B%29&amp;journal=J%20Biomed%20Nanotechnol&amp;volume=7&amp;issue=1&amp;pages=106-7&amp;publication_year=2011&amp;author=Vallabani%2CNV&amp;author=Mittal%2CS&amp;author=Shukla%2CRK&amp;author=Pandey%2CAK&amp;author=Dhakate%2CSR&amp;author=Pasricha%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 113\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">114.<\/span>\n<p id=\"ref-CR114\" class=\"c-article-references__text\">Peng J, Gao W, Gupta BK, Liu Z, Romero-Aburto R, Ge L, et al. Graphene quantum dots derived from carbon fibers. Nano Lett. 2012;12(1530\u20136992 (Electronic)):844\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XivVGlsg%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 114\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22216895\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 114\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnl2038979\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 114\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20quantum%20dots%20derived%20from%20carbon%20fibers&amp;journal=Nano%20Lett&amp;volume=12&amp;issue=1530%E2%80%936992%20%28Electronic%29&amp;pages=844-9&amp;publication_year=2012&amp;author=Peng%2CJ&amp;author=Gao%2CW&amp;author=Gupta%2CBK&amp;author=Liu%2CZ&amp;author=Romero-Aburto%2CR&amp;author=Ge%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 114\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">115.<\/span>\n<p id=\"ref-CR115\" class=\"c-article-references__text\">Shang W, Zhang X, Zhang M, Fan Z, Sun Y, Han M, et al. The uptake mechanism and biocompatibility of graphene quantum dots with human neural stem cells. Nanoscale. 2014;6(2040\u20133372 (Electronic)):5799\u2013806.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXotFCitb0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 115\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24740121\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 115\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc3nr06433f\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 115\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20uptake%20mechanism%20and%20biocompatibility%20of%20graphene%20quantum%20dots%20with%20human%20neural%20stem%20cells&amp;journal=Nanoscale&amp;volume=6&amp;issue=2040%E2%80%933372%20%28Electronic%29&amp;pages=5799-806&amp;publication_year=2014&amp;author=Shang%2CW&amp;author=Zhang%2CX&amp;author=Zhang%2CM&amp;author=Fan%2CZ&amp;author=Sun%2CY&amp;author=Han%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 115\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">116.<\/span>\n<p id=\"ref-CR116\" class=\"c-article-references__text\">Zhang L, Xia J, Zhao Q, Liu L, Zhang Z. Functional graphene oxide as a nanocarrier for controlled loading and targeted delivery of mixed anticancer drugs. Small. 2010;6(4):537\u201344.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXislKltr4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 116\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20033930\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 116\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.200901680\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 116\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Functional%20graphene%20oxide%20as%20a%20nanocarrier%20for%20controlled%20loading%20and%20targeted%20delivery%20of%20mixed%20anticancer%20drugs&amp;journal=Small&amp;volume=6&amp;issue=4&amp;pages=537-44&amp;publication_year=2010&amp;author=Zhang%2CL&amp;author=Xia%2CJ&amp;author=Zhao%2CQ&amp;author=Liu%2CL&amp;author=Zhang%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 116\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">117.<\/span>\n<p id=\"ref-CR117\" class=\"c-article-references__text\">Ruiz ON, Fernando KA, Wang B, Brown NA, Luo PG, McNamara ND, et al. Graphene oxide: a nonspecific enhancer of cellular growth. ACS Nano. 2011;5(10):8100\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXht1ChtLjL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 117\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21932790\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 117\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn202699t\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 117\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%3A%20a%20nonspecific%20enhancer%20of%20cellular%20growth&amp;journal=ACS%20Nano&amp;volume=5&amp;issue=10&amp;pages=8100-7&amp;publication_year=2011&amp;author=Ruiz%2CON&amp;author=Fernando%2CKA&amp;author=Wang%2CB&amp;author=Brown%2CNA&amp;author=Luo%2CPG&amp;author=McNamara%2CND\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 117\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">118.<\/span>\n<p id=\"ref-CR118\" class=\"c-article-references__text\">Akhavan O, Ghaderi E, Akhavan A. Size-dependent genotoxicity of graphene nanoplatelets in human stem cells. Biomaterials. 2012;33(32):8017\u201325.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtFCitrfP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 118\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22863381\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 118\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.07.040\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 118\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Size-dependent%20genotoxicity%20of%20graphene%20nanoplatelets%20in%20human%20stem%20cells&amp;journal=Biomaterials&amp;volume=33&amp;issue=32&amp;pages=8017-25&amp;publication_year=2012&amp;author=Akhavan%2CO&amp;author=Ghaderi%2CE&amp;author=Akhavan%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 118\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">119.<\/span>\n<p id=\"ref-CR119\" class=\"c-article-references__text\">Chang Y, Yang ST, Liu JH, Dong E, Wang Y, Cao A, et al. In vitro toxicity evaluation of graphene oxide on A549 cells. Toxicol Lett. 2011;200(3):201\u201310.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXnsVajsw%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 119\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21130147\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 119\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.toxlet.2010.11.016\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 119\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vitro%20toxicity%20evaluation%20of%20graphene%20oxide%20on%20A549%20cells&amp;journal=Toxicol%20Lett&amp;volume=200&amp;issue=3&amp;pages=201-10&amp;publication_year=2011&amp;author=Chang%2CY&amp;author=Yang%2CST&amp;author=Liu%2CJH&amp;author=Dong%2CE&amp;author=Wang%2CY&amp;author=Cao%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 119\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">120.<\/span>\n<p id=\"ref-CR120\" class=\"c-article-references__text\">Zhang X, Hu W, Li J, Tao L, Wei Y. A comparative study of cellular uptake and cytotoxicity of multi-walled carbon nanotubes, graphene oxide, and nanodiamond. Toxicol Res. 2012;1(1):62\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xos1ylsL0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 120\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc2tx20006f\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 120\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=A%20comparative%20study%20of%20cellular%20uptake%20and%20cytotoxicity%20of%20multi-walled%20carbon%20nanotubes%2C%20graphene%20oxide%2C%20and%20nanodiamond&amp;journal=Toxicol%20Res&amp;volume=1&amp;issue=1&amp;pages=62-8&amp;publication_year=2012&amp;author=Zhang%2CX&amp;author=Hu%2CW&amp;author=Li%2CJ&amp;author=Tao%2CL&amp;author=Wei%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 120\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">121.<\/span>\n<p id=\"ref-CR121\" class=\"c-article-references__text\">Lu CH, Zhu CL, Li J, Liu JJ, Chen X, Yang HH. Using graphene to protect DNA from cleavage during cellular delivery. Chem Commun. 2010;46(1364-548X (Electronic)):3116\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXlt1Crsrg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 121\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fb926893f\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 121\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Using%20graphene%20to%20protect%20DNA%20from%20cleavage%20during%20cellular%20delivery&amp;journal=Chem%20Commun&amp;volume=46&amp;issue=1364-548X%20%28Electronic%29&amp;pages=3116-8&amp;publication_year=2010&amp;author=Lu%2CCH&amp;author=Zhu%2CCL&amp;author=Li%2CJ&amp;author=Liu%2CJJ&amp;author=Chen%2CX&amp;author=Yang%2CHH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 121\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">122.<\/span>\n<p id=\"ref-CR122\" class=\"c-article-references__text\">De Marzi L, Ottaviano L, Perrozzi F, Nardone M, Santucci S, De Lapuente J, et al. Flake size-dependent cyto and genotoxic evaluation of graphene oxide on in vitro A549, CaCo2 and vero cell lines. J Biol Regul Homeost Agents. 2014;28(2):281\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25001660\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 122\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Flake%20size-dependent%20cyto%20and%20genotoxic%20evaluation%20of%20graphene%20oxide%20on%20in%20vitro%20A549%2C%20CaCo2%20and%20vero%20cell%20lines&amp;journal=J%20Biol%20Regul%20Homeost%20Agents&amp;volume=28&amp;issue=2&amp;pages=281-9&amp;publication_year=2014&amp;author=Marzi%2CL&amp;author=Ottaviano%2CL&amp;author=Perrozzi%2CF&amp;author=Nardone%2CM&amp;author=Santucci%2CS&amp;author=Lapuente%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 122\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">123.<\/span>\n<p id=\"ref-CR123\" class=\"c-article-references__text\">Lv M, Zhang Y, Liang L, Wei M, Hu W, Li X, et al. Effect of graphene oxide on undifferentiated and retinoic acid-differentiated SH-SY5Y cells line. Nanoscale. 2012;4(13):3861\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XosV2quro%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 123\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22653613\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 123\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc2nr30407d\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 123\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Effect%20of%20graphene%20oxide%20on%20undifferentiated%20and%20retinoic%20acid-differentiated%20SH-SY5Y%20cells%20line&amp;journal=Nanoscale&amp;volume=4&amp;issue=13&amp;pages=3861-6&amp;publication_year=2012&amp;author=Lv%2CM&amp;author=Zhang%2CY&amp;author=Liang%2CL&amp;author=Wei%2CM&amp;author=Hu%2CW&amp;author=Li%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 123\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">124.<\/span>\n<p id=\"ref-CR124\" class=\"c-article-references__text\">Reshma SC, Syama S, Mohanan PV. Nano-biointeractions of PEGylated and bare reduced graphene oxide on lung alveolar epithelial cells: A comparative in vitro study. Colloids Surf B Biointerf. 2016;140(1873\u20134367 (Electronic)):104\u201316.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XhtlChtQ%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 124\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.colsurfb.2015.12.030\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 124\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nano-biointeractions%20of%20PEGylated%20and%20bare%20reduced%20graphene%20oxide%20on%20lung%20alveolar%20epithelial%20cells%3A%20A%20comparative%20in%20vitro%20study&amp;journal=Colloids%20Surf%20B%20Biointerf&amp;volume=140&amp;issue=1873%E2%80%934367%20%28Electronic%29&amp;pages=104-16&amp;publication_year=2016&amp;author=Reshma%2CSC&amp;author=Syama%2CS&amp;author=Mohanan%2CPV\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 124\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">125.<\/span>\n<p id=\"ref-CR125\" class=\"c-article-references__text\">Rana VK, Choi MC, Kong JY, Kim GY, Mi JK, Kim SH, et al. Synthesis and drug\u2010delivery behavior of chitosan\u2010functionalized graphene oxide hybrid nanosheets. Macromol Mater Eng. 2011;296(2):131\u201340.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhslyhs7k%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 125\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fmame.201000307\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 125\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Synthesis%20and%20drug%E2%80%90delivery%20behavior%20of%20chitosan%E2%80%90functionalized%20graphene%20oxide%20hybrid%20nanosheets&amp;journal=Macromol%20Mater%20Eng&amp;volume=296&amp;issue=2&amp;pages=131-40&amp;publication_year=2011&amp;author=Rana%2CVK&amp;author=Choi%2CMC&amp;author=Kong%2CJY&amp;author=Kim%2CGY&amp;author=Mi%2CJK&amp;author=Kim%2CSH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 125\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">126.<\/span>\n<p id=\"ref-CR126\" class=\"c-article-references__text\">Yang K, Li Y, Tan X, Peng R, Liu Z. Behavior and toxicity of graphene and its functionalized derivatives in biological systems. Small. 2013;9(9\u201310):1492\u2013503.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtlKisb3L\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 126\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22987582\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 126\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201201417\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 126\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Behavior%20and%20toxicity%20of%20graphene%20and%20its%20functionalized%20derivatives%20in%20biological%20systems&amp;journal=Small&amp;volume=9&amp;issue=9%E2%80%9310&amp;pages=1492-503&amp;publication_year=2013&amp;author=Yang%2CK&amp;author=Li%2CY&amp;author=Tan%2CX&amp;author=Peng%2CR&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 126\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">127.<\/span>\n<p id=\"ref-CR127\" class=\"c-article-references__text\">Yoon OJ, Kim I, Sohn IY, Kieu TT, Lee NE. Toxicity of graphene nanoflakes evaluated by cell-based electrochemical impedance biosensing. J Biomed Mater Res A. 2014;102(7):2288\u201394.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23894129\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 127\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fjbm.a.34886\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 127\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXosVWjurc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 127\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20nanoflakes%20evaluated%20by%20cell-based%20electrochemical%20impedance%20biosensing&amp;journal=J%20Biomed%20Mater%20Res%20A&amp;volume=102&amp;issue=7&amp;pages=2288-94&amp;publication_year=2014&amp;author=Yoon%2COJ&amp;author=Kim%2CI&amp;author=Sohn%2CIY&amp;author=Kieu%2CTT&amp;author=Lee%2CNE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 127\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">128.<\/span>\n<p id=\"ref-CR128\" class=\"c-article-references__text\">Jastrzebska AM, Kurtycz P, Olszyna AR. Recent advances in graphene family materials toxicity investigations. J Nanopart Res. 2012;14(12):1320.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23239936\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 128\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3517804\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 128\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs11051-012-1320-8\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 128\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXkslequr4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 128\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Recent%20advances%20in%20graphene%20family%20materials%20toxicity%20investigations&amp;journal=J%20Nanopart%20Res&amp;volume=14&amp;issue=12&amp;publication_year=2012&amp;author=Jastrzebska%2CAM&amp;author=Kurtycz%2CP&amp;author=Olszyna%2CAR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 128\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">129.<\/span>\n<p id=\"ref-CR129\" class=\"c-article-references__text\">Misra SK, Kondaiah P, Bhattacharya S, Rao CN. Graphene as a nanocarrier for tamoxifen induces apoptosis in transformed cancer cell lines of different origins. Small. 2012;8(1):131\u201343.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhsV2lsLzF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 129\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22102595\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 129\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201101640\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 129\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20as%20a%20nanocarrier%20for%20tamoxifen%20induces%20apoptosis%20in%20transformed%20cancer%20cell%20lines%20of%20different%20origins&amp;journal=Small&amp;volume=8&amp;issue=1&amp;pages=131-43&amp;publication_year=2012&amp;author=Misra%2CSK&amp;author=Kondaiah%2CP&amp;author=Bhattacharya%2CS&amp;author=Rao%2CCN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 129\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">130.<\/span>\n<p id=\"ref-CR130\" class=\"c-article-references__text\">Singh Z. Applications and toxicity of graphene family nanomaterials and their composites. Nanotechnol Sci Appl. 2016;9(1177\u20138903 (Electronic)):15.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=27051278\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 130\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4803243\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 130\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2147%2FNSA.S101818\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 130\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Applications%20and%20toxicity%20of%20graphene%20family%20nanomaterials%20and%20their%20composites&amp;journal=Nanotechnol%20Sci%20Appl&amp;volume=9&amp;issue=1177%E2%80%938903%20%28Electronic%29&amp;publication_year=2016&amp;author=Singh%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 130\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">131.<\/span>\n<p id=\"ref-CR131\" class=\"c-article-references__text\">Combarros RG, Collado S, Diaz M. Toxicity of graphene oxide on growth and metabolism of Pseudomonas putida. J Hazard Mater. 2016;310(1873\u20133336 (Electronic)):246\u201352.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XjtlCnsrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 131\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26937871\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 131\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.jhazmat.2016.02.038\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 131\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20oxide%20on%20growth%20and%20metabolism%20of%20Pseudomonas%20putida&amp;journal=J%20Hazard%20Mater&amp;volume=310&amp;issue=1873%E2%80%933336%20%28Electronic%29&amp;pages=246-52&amp;publication_year=2016&amp;author=Combarros%2CRG&amp;author=Collado%2CS&amp;author=Diaz%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 131\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">132.<\/span>\n<p id=\"ref-CR132\" class=\"c-article-references__text\">Lee JK, Jeong AY, Bae J, Seok JH, Yang JY, Roh HS, et al. The role of surface functionalization on the pulmonary inflammogenicity and translocation into mediastinal lymph nodes of graphene nanoplatelets in rats. Arch Toxicol. 2016(1432\u20130738 (Electronic)):1\u201310. DOI: .1007\/s00204-016-1706-y<\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">133.<\/span>\n<p id=\"ref-CR133\" class=\"c-article-references__text\">Patlolla AK, Randolph J, Kumari SA, Tchounwou PB. Toxicity evaluation of graphene oxidein kidneys of Sprague\u2013Dawley rats. Int J Environ Res Public Health. 2016;13(1660\u20134601 (Electronic)):380.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=27043588\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 133\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4847042\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 133\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3390%2Fijerph13040380\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 133\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20evaluation%20of%20graphene%20oxidein%20kidneys%20of%20Sprague%E2%80%93Dawley%20rats&amp;journal=Int%20J%20Environ%20Res%20Public%20Health&amp;volume=13&amp;issue=1660%E2%80%934601%20%28Electronic%29&amp;publication_year=2016&amp;author=Patlolla%2CAK&amp;author=Randolph%2CJ&amp;author=Kumari%2CSA&amp;author=Tchounwou%2CPB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 133\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">134.<\/span>\n<p id=\"ref-CR134\" class=\"c-article-references__text\">Wang ZG, Zhou R, Jiang D, Song JE, Xu Q, Si J, et al. Toxicity of graphene quantum dots in zebrafish embryo. Biomed Environ Sci. 2015;28(0895\u20133988 (Print)):341\u201351.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XitVOhtrg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 134\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26055561\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 134\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20quantum%20dots%20in%20zebrafish%20embryo&amp;journal=Biomed%20Environ%20Sci&amp;volume=28&amp;issue=0895%E2%80%933988%20%28Print%29&amp;pages=341-51&amp;publication_year=2015&amp;author=Wang%2CZG&amp;author=Zhou%2CR&amp;author=Jiang%2CD&amp;author=Song%2CJE&amp;author=Xu%2CQ&amp;author=Si%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 134\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">135.<\/span>\n<p id=\"ref-CR135\" class=\"c-article-references__text\">Wang K, Jing R, Song H, Zhang J, Yan W, Guo S, et al. Biocompatibility of graphene oxide. Nanoscale Res Lett. 2010;6(1):1\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Biocompatibility%20of%20graphene%20oxide&amp;journal=Nanoscale%20Res%20Lett&amp;volume=6&amp;issue=1&amp;pages=1-8&amp;publication_year=2010&amp;author=Wang%2CK&amp;author=Jing%2CR&amp;author=Song%2CH&amp;author=Zhang%2CJ&amp;author=Yan%2CW&amp;author=Guo%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 135\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">136.<\/span>\n<p id=\"ref-CR136\" class=\"c-article-references__text\">Hu W, Peng C, Luo W, Lv M, Li X, Li D, et al. Graphene-based antibacterial paper. ACS Nano. 2010;4(7):4317\u201323.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXotFKnur0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 136\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20593851\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 136\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn101097v\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 136\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene-based%20antibacterial%20paper&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=7&amp;pages=4317-23&amp;publication_year=2010&amp;author=Hu%2CW&amp;author=Peng%2CC&amp;author=Luo%2CW&amp;author=Lv%2CM&amp;author=Li%2CX&amp;author=Li%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 136\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">137.<\/span>\n<p id=\"ref-CR137\" class=\"c-article-references__text\">Dreyer DR, Park S, Bielawski CW, Ruoff RS. The chemistry of graphene oxide. Chem Soc Rev. 2010;39(1):228\u201340.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXhsFGrsrvI\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 137\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20023850\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 137\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FB917103G\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 137\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20chemistry%20of%20graphene%20oxide&amp;journal=Chem%20Soc%20Rev&amp;volume=39&amp;issue=1&amp;pages=228-40&amp;publication_year=2010&amp;author=Dreyer%2CDR&amp;author=Park%2CS&amp;author=Bielawski%2CCW&amp;author=Ruoff%2CRS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 137\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">138.<\/span>\n<p id=\"ref-CR138\" class=\"c-article-references__text\">Mullick Chowdhury S, Lalwani G, Zhang K, Yang JY, Neville K, Sitharaman B. Cell specific cytotoxicity and uptake of graphene nanoribbons. Biomaterials. 2013;34(1):283\u201393.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhsFSntrjF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 138\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23072942\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 138\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.09.057\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 138\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cell%20specific%20cytotoxicity%20and%20uptake%20of%20graphene%20nanoribbons&amp;journal=Biomaterials&amp;volume=34&amp;issue=1&amp;pages=283-93&amp;publication_year=2013&amp;author=Mullick%20Chowdhury%2CS&amp;author=Lalwani%2CG&amp;author=Zhang%2CK&amp;author=Yang%2CJY&amp;author=Neville%2CK&amp;author=Sitharaman%2CB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 138\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">139.<\/span>\n<p id=\"ref-CR139\" class=\"c-article-references__text\">Zhang H, Peng C, Yang J, Lv M, Liu R, He D, et al. Uniform ultrasmall graphene oxide nanosheets with low cytotoxicity and high cellular uptake. ACS Appl Mater Interf. 2013;5(5):1761\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXitlCisL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 139\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fam303005j\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 139\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Uniform%20ultrasmall%20graphene%20oxide%20nanosheets%20with%20low%20cytotoxicity%20and%20high%20cellular%20uptake&amp;journal=ACS%20Appl%20Mater%20Interf&amp;volume=5&amp;issue=5&amp;pages=1761-7&amp;publication_year=2013&amp;author=Zhang%2CH&amp;author=Peng%2CC&amp;author=Yang%2CJ&amp;author=Lv%2CM&amp;author=Liu%2CR&amp;author=He%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 139\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">140.<\/span>\n<p id=\"ref-CR140\" class=\"c-article-references__text\">Hasan SA, Rigueur JL, Harl RR, Krejci AJ, Isabel GJ, Rogers BR, et al. Transferable graphene oxide films with tunable microstructures. ACS Nano. 2010;4(12):7367\u201372.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsVyitLnP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 140\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21114272\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 140\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn102152x\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 140\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Transferable%20graphene%20oxide%20films%20with%20tunable%20microstructures&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=12&amp;pages=7367-72&amp;publication_year=2010&amp;author=Hasan%2CSA&amp;author=Rigueur%2CJL&amp;author=Harl%2CRR&amp;author=Krejci%2CAJ&amp;author=Isabel%2CGJ&amp;author=Rogers%2CBR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 140\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">141.<\/span>\n<p id=\"ref-CR141\" class=\"c-article-references__text\">Hsieh CT, Chen WY. Water\/oil repellency and work of adhesion of liquid droplets on graphene oxide and graphene surfaces. Surf Coat Technol. 2011;205(19):4554\u201361.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXmtFehsrg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 141\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.surfcoat.2011.03.128\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 141\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Water%2Foil%20repellency%20and%20work%20of%20adhesion%20of%20liquid%20droplets%20on%20graphene%20oxide%20and%20graphene%20surfaces&amp;journal=Surf%20Coat%20Technol&amp;volume=205&amp;issue=19&amp;pages=4554-61&amp;publication_year=2011&amp;author=Hsieh%2CCT&amp;author=Chen%2CWY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 141\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">142.<\/span>\n<p id=\"ref-CR142\" class=\"c-article-references__text\">Yang ST, Chang Y, Wang H, Liu G, Sheng C, Wang Y, et al. Folding\/aggregation of graphene oxide and its application in Cu 2+ removal. J Colloid Interf Sci. 2010;351(1):122\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhtFWhtb%252FP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 142\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.jcis.2010.07.042\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 142\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Folding%2Faggregation%20of%20graphene%20oxide%20and%20its%20application%20in%20Cu%202%2B%20removal&amp;journal=J%20Colloid%20Interf%20Sci&amp;volume=351&amp;issue=1&amp;pages=122-7&amp;publication_year=2010&amp;author=Yang%2CST&amp;author=Chang%2CY&amp;author=Wang%2CH&amp;author=Liu%2CG&amp;author=Sheng%2CC&amp;author=Wang%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 142\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">143.<\/span>\n<p id=\"ref-CR143\" class=\"c-article-references__text\">Bagri A, Mattevi C, Acik M, Chabal YJ, Chhowalla M, Shenoy VB. Structural evolution during the reduction of chemically derived graphene oxide. Nat Chem. 2010;2(7):581\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXnvVSiurg%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 143\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20571578\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 143\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnchem.686\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 143\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Structural%20evolution%20during%20the%20reduction%20of%20chemically%20derived%20graphene%20oxide&amp;journal=Nat%20Chem&amp;volume=2&amp;issue=7&amp;pages=581-7&amp;publication_year=2010&amp;author=Bagri%2CA&amp;author=Mattevi%2CC&amp;author=Acik%2CM&amp;author=Chabal%2CYJ&amp;author=Chhowalla%2CM&amp;author=Shenoy%2CVB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 143\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">144.<\/span>\n<p id=\"ref-CR144\" class=\"c-article-references__text\">Hinzmann M, Jaworski S, Kutwin M, Jagiello J, Kozinski R, Wierzbicki M, et al. Nanoparticles containing allotropes of carbon have genotoxic effects on glioblastoma multiforme cells. Int J Nanomed. 2014;9:2409\u201317.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nanoparticles%20containing%20allotropes%20of%20carbon%20have%20genotoxic%20effects%20on%20glioblastoma%20multiforme%20cells&amp;journal=Int%20J%20Nanomed&amp;volume=9&amp;pages=2409-17&amp;publication_year=2014&amp;author=Hinzmann%2CM&amp;author=Jaworski%2CS&amp;author=Kutwin%2CM&amp;author=Jagiello%2CJ&amp;author=Kozinski%2CR&amp;author=Wierzbicki%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 144\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">145.<\/span>\n<p id=\"ref-CR145\" class=\"c-article-references__text\">Jin C, Wang F, Tang Y, Zhang X, Wang J, Yang Y. Distribution of graphene oxide and TiO2-graphene oxide composite in A549 cells. Biol Trace Elem Res. 2014;159(1\u20133):393\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXovVKntL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 145\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24869803\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 145\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs12011-014-0027-3\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 145\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Distribution%20of%20graphene%20oxide%20and%20TiO2-graphene%20oxide%20composite%20in%20A549%20cells&amp;journal=Biol%20Trace%20Elem%20Res&amp;volume=159&amp;issue=1%E2%80%933&amp;pages=393-8&amp;publication_year=2014&amp;author=Jin%2CC&amp;author=Wang%2CF&amp;author=Tang%2CY&amp;author=Zhang%2CX&amp;author=Wang%2CJ&amp;author=Yang%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 145\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">146.<\/span>\n<p id=\"ref-CR146\" class=\"c-article-references__text\">Jarosz A, Skoda M, Dudek I, Szukiewicz D. Oxidative stress and mitochondrial activation as the main mechanisms underlying graphene toxicity against human cancer cells. Oxid Med Cell Longev. 2016;2016:5851035.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26649139\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 146\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1155%2F2016%2F5851035\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 146\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Oxidative%20stress%20and%20mitochondrial%20activation%20as%20the%20main%20mechanisms%20underlying%20graphene%20toxicity%20against%20human%20cancer%20cells&amp;journal=Oxid%20Med%20Cell%20Longev&amp;volume=2016&amp;publication_year=2016&amp;author=Jarosz%2CA&amp;author=Skoda%2CM&amp;author=Dudek%2CI&amp;author=Szukiewicz%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 146\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">147.<\/span>\n<p id=\"ref-CR147\" class=\"c-article-references__text\">Ren H, Wang C, Zhang J, Zhou X, Xu D, Zheng J, et al. DNA cleavage system of nanosized graphene oxide sheets and copper ions. ACS Nano. 2010;4(12):7169\u201374.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsVegurvP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 147\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21082807\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 147\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn101696r\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 147\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=DNA%20cleavage%20system%20of%20nanosized%20graphene%20oxide%20sheets%20and%20copper%20ions&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=12&amp;pages=7169-74&amp;publication_year=2010&amp;author=Ren%2CH&amp;author=Wang%2CC&amp;author=Zhang%2CJ&amp;author=Zhou%2CX&amp;author=Xu%2CD&amp;author=Zheng%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 147\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">148.<\/span>\n<p id=\"ref-CR148\" class=\"c-article-references__text\">Wang A, Pu K, Dong B, Liu Y, Zhang L, Zhang Z, et al. Role of surface charge and oxidative stress in cytotoxicity and genotoxicity of graphene oxide towards human lung fibroblast cells. J Appl Toxicol. 2013;33(10):1156\u201364.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXpsFOis7w%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 148\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23775274\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 148\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fjat.2877\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 148\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Role%20of%20surface%20charge%20and%20oxidative%20stress%20in%20cytotoxicity%20and%20genotoxicity%20of%20graphene%20oxide%20towards%20human%20lung%20fibroblast%20cells&amp;journal=J%20Appl%20Toxicol&amp;volume=33&amp;issue=10&amp;pages=1156-64&amp;publication_year=2013&amp;author=Wang%2CA&amp;author=Pu%2CK&amp;author=Dong%2CB&amp;author=Liu%2CY&amp;author=Zhang%2CL&amp;author=Zhang%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 148\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">149.<\/span>\n<p id=\"ref-CR149\" class=\"c-article-references__text\">Jiang X, Dausend J, Hafner M, Musyanovych A, Rocker C, Landfester K, et al. Specific effects of surface amines on polystyrene nanoparticles in their interactions with mesenchymal stem cells. Biomacromolecules. 2010;11(3):748\u201353.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXitFehsbY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 149\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20166675\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 149\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fbm901348z\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 149\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Specific%20effects%20of%20surface%20amines%20on%20polystyrene%20nanoparticles%20in%20their%20interactions%20with%20mesenchymal%20stem%20cells&amp;journal=Biomacromolecules&amp;volume=11&amp;issue=3&amp;pages=748-53&amp;publication_year=2010&amp;author=Jiang%2CX&amp;author=Dausend%2CJ&amp;author=Hafner%2CM&amp;author=Musyanovych%2CA&amp;author=Rocker%2CC&amp;author=Landfester%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 149\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">150.<\/span>\n<p id=\"ref-CR150\" class=\"c-article-references__text\">Yue ZG, Wei W, Lv PP, Yue H, Wang LY, Su ZG, et al. Surface charge affects cellular uptake and intracellular trafficking of chitosan-based nanoparticles. Biomacromolecules. 2011;12(7):2440\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXnslKisrY%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 150\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21657799\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 150\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fbm101482r\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 150\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Surface%20charge%20affects%20cellular%20uptake%20and%20intracellular%20trafficking%20of%20chitosan-based%20nanoparticles&amp;journal=Biomacromolecules&amp;volume=12&amp;issue=7&amp;pages=2440-6&amp;publication_year=2011&amp;author=Yue%2CZG&amp;author=Wei%2CW&amp;author=Lv%2CPP&amp;author=Yue%2CH&amp;author=Wang%2CLY&amp;author=Su%2CZG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 150\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">151.<\/span>\n<p id=\"ref-CR151\" class=\"c-article-references__text\">Zhang W, Wang C, Li Z, Lu Z, Li Y, Yin JJ, et al. Unraveling stress-induced toxicity properties of graphene oxide and the underlying mechanism. Adv Mater. 2012;24(39):5391\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xht1GltbbL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 151\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22927326\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 151\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fadma.201202678\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 151\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Unraveling%20stress-induced%20toxicity%20properties%20of%20graphene%20oxide%20and%20the%20underlying%20mechanism&amp;journal=Adv%20Mater&amp;volume=24&amp;issue=39&amp;pages=5391-7&amp;publication_year=2012&amp;author=Zhang%2CW&amp;author=Wang%2CC&amp;author=Li%2CZ&amp;author=Lu%2CZ&amp;author=Li%2CY&amp;author=Yin%2CJJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 151\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">152.<\/span>\n<p id=\"ref-CR152\" class=\"c-article-references__text\">Wojtoniszak M, Chen X, Kalenczuk RJ, Wajda A, \u0141apczuk J, Kurzewski M, et al. Synthesis, dispersion, and cytocompatibility of graphene oxide and reduced graphene oxide. Colloids Surf B Biointerf. 2011;89(1):79\u201385.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Synthesis%2C%20dispersion%2C%20and%20cytocompatibility%20of%20graphene%20oxide%20and%20reduced%20graphene%20oxide&amp;journal=Colloids%20Surf%20B%20Biointerf&amp;volume=89&amp;issue=1&amp;pages=79-85&amp;publication_year=2011&amp;author=Wojtoniszak%2CM&amp;author=Chen%2CX&amp;author=Kalenczuk%2CRJ&amp;author=Wajda%2CA&amp;author=%C5%81apczuk%2CJ&amp;author=Kurzewski%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 152\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">153.<\/span>\n<p id=\"ref-CR153\" class=\"c-article-references__text\">Hu H, Yu J, Li Y, Zhao J, Dong H. Engineering of a novel pluronic F127\/graphene nanohybrid for pH responsive drug delivery. J Biomed Mater Res A. 2012;100(1):141\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21997951\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 153\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fjbm.a.33252\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 153\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhsVyrtrrF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 153\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Engineering%20of%20a%20novel%20pluronic%20F127%2Fgraphene%20nanohybrid%20for%20pH%20responsive%20drug%20delivery&amp;journal=J%20Biomed%20Mater%20Res%20A&amp;volume=100&amp;issue=1&amp;pages=141-8&amp;publication_year=2012&amp;author=Hu%2CH&amp;author=Yu%2CJ&amp;author=Li%2CY&amp;author=Zhao%2CJ&amp;author=Dong%2CH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 153\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">154.<\/span>\n<p id=\"ref-CR154\" class=\"c-article-references__text\">Sahu A, Choi WI, Tae G. A stimuli-sensitive injectable graphene oxide composite hydrogel. Chem Commun (Camb). 2012;48(47):5820\u20132.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xnt1ert7Y%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 154\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2Fc2cc31862h\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 154\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=A%20stimuli-sensitive%20injectable%20graphene%20oxide%20composite%20hydrogel&amp;journal=Chem%20Commun%20%28Camb%29&amp;volume=48&amp;issue=47&amp;pages=5820-2&amp;publication_year=2012&amp;author=Sahu%2CA&amp;author=Choi%2CWI&amp;author=Tae%2CG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 154\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">155.<\/span>\n<p id=\"ref-CR155\" class=\"c-article-references__text\">Yang K, Zhang S, Zhang G, Sun X, Lee ST, Liu Z. Graphene in mice: ultrahigh in vivo tumor uptake and efficient photothermal therapy. Nano Lett. 2010;10(9):3318\u201323.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXpslWjsbw%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 155\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20684528\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 155\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnl100996u\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 155\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20in%20mice%3A%20ultrahigh%20in%20vivo%20tumor%20uptake%20and%20efficient%20photothermal%20therapy&amp;journal=Nano%20Lett&amp;volume=10&amp;issue=9&amp;pages=3318-23&amp;publication_year=2010&amp;author=Yang%2CK&amp;author=Zhang%2CS&amp;author=Zhang%2CG&amp;author=Sun%2CX&amp;author=Lee%2CST&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 155\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">156.<\/span>\n<p id=\"ref-CR156\" class=\"c-article-references__text\">Romero-Aburto R, Narayanan TN, Nagaoka Y, Hasumura T, Mitcham TM, Fukuda T, et al. Fluorinated graphene oxide; a new multimodal material for biological applications. Adv Mater. 2013;25(39):5632\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtlCgtrnL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 156\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24038195\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 156\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3938113\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 156\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fadma201301804\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 156\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Fluorinated%20graphene%20oxide%3B%20a%20new%20multimodal%20material%20for%20biological%20applications&amp;journal=Adv%20Mater&amp;volume=25&amp;issue=39&amp;pages=5632-7&amp;publication_year=2013&amp;author=Romero-Aburto%2CR&amp;author=Narayanan%2CTN&amp;author=Nagaoka%2CY&amp;author=Hasumura%2CT&amp;author=Mitcham%2CTM&amp;author=Fukuda%2CT\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 156\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">157.<\/span>\n<p id=\"ref-CR157\" class=\"c-article-references__text\">Feng L, Liu Z. Graphene in biomedicine: opportunities and challenges. Nanomed (Lond). 2011;6(2):317\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXivFymtb0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 157\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2217%2Fnnm.10.158\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 157\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20in%20biomedicine%3A%20opportunities%20and%20challenges&amp;journal=Nanomed%20%28Lond%29&amp;volume=6&amp;issue=2&amp;pages=317-24&amp;publication_year=2011&amp;author=Feng%2CL&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 157\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">158.<\/span>\n<p id=\"ref-CR158\" class=\"c-article-references__text\">Robinson JT, Tabakman SM, Liang Y, Wang H, Casalongue HS, Vinh D, et al. Ultrasmall reduced graphene oxide with high near-infrared absorbance for photothermal therapy. J Am Chem Soc. 2011;133(17):6825\u201331.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXksVeitb4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 158\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21476500\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 158\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fja2010175\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 158\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Ultrasmall%20reduced%20graphene%20oxide%20with%20high%20near-infrared%20absorbance%20for%20photothermal%20therapy&amp;journal=J%20Am%20Chem%20Soc&amp;volume=133&amp;issue=17&amp;pages=6825-31&amp;publication_year=2011&amp;author=Robinson%2CJT&amp;author=Tabakman%2CSM&amp;author=Liang%2CY&amp;author=Wang%2CH&amp;author=Casalongue%2CHS&amp;author=Vinh%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 158\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">159.<\/span>\n<p id=\"ref-CR159\" class=\"c-article-references__text\">Singh N, Manshian B, Jenkins GJS, Griffiths SM, Williams PM, Maffeis TGG, et al. NanoGenotoxicology: The DNA damaging potential of engineered nanomaterials. Biomaterials. 2009;30(s 23\u201324):3891\u2013914.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXmvVyktr8%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 159\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19427031\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 159\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2009.04.009\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 159\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=NanoGenotoxicology%3A%20The%20DNA%20damaging%20potential%20of%20engineered%20nanomaterials&amp;journal=Biomaterials&amp;volume=30&amp;issue=s%2023%E2%80%9324&amp;pages=3891-914&amp;publication_year=2009&amp;author=Singh%2CN&amp;author=Manshian%2CB&amp;author=Jenkins%2CGJS&amp;author=Griffiths%2CSM&amp;author=Williams%2CPM&amp;author=Maffeis%2CTGG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 159\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">160.<\/span>\n<p id=\"ref-CR160\" class=\"c-article-references__text\">Yin PT, Shah S, Chhowalla M, Lee KB. Design, synthesis, and characterization of graphene-nanoparticle hybrid materials for bioapplications. Chem Rev. 2015;115(7):2483\u2013531.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXjtVSjs7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 160\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25692385\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 160\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fcr500537t\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 160\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Design%2C%20synthesis%2C%20and%20characterization%20of%20graphene-nanoparticle%20hybrid%20materials%20for%20bioapplications&amp;journal=Chem%20Rev&amp;volume=115&amp;issue=7&amp;pages=2483-531&amp;publication_year=2015&amp;author=Yin%2CPT&amp;author=Shah%2CS&amp;author=Chhowalla%2CM&amp;author=Lee%2CKB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 160\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">161.<\/span>\n<p id=\"ref-CR161\" class=\"c-article-references__text\">Peng L, Xu Z, Liu Z, Wei Y, Sun H, Li Z, et al. An iron-based green approach to 1-h production of single-layer graphene oxide. Nat Commun. 2015;6:5716.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXosFensro%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 161\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25607686\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 161\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4354147\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 161\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fncomms6716\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 161\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=An%20iron-based%20green%20approach%20to%201-h%20production%20of%20single-layer%20graphene%20oxide&amp;journal=Nat%20Commun&amp;volume=6&amp;publication_year=2015&amp;author=Peng%2CL&amp;author=Xu%2CZ&amp;author=Liu%2CZ&amp;author=Wei%2CY&amp;author=Sun%2CH&amp;author=Li%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 161\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">162.<\/span>\n<p id=\"ref-CR162\" class=\"c-article-references__text\">Ali-Boucetta H, Bitounis D, Raveendran-Nair R, Servant A, Van den Bossche J, Kostarelos K. Purified graphene oxide dispersions lack in vitro cytotoxicity and in vivo pathogenicity. Adv Healthc Mater. 2013;2(3):433\u201341.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXjsVKgs7s%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 162\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23184580\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 162\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fadhm.201200248\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 162\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Purified%20graphene%20oxide%20dispersions%20lack%20in%20vitro%20cytotoxicity%20and%20in%20vivo%20pathogenicity&amp;journal=Adv%20Healthc%20Mater&amp;volume=2&amp;issue=3&amp;pages=433-41&amp;publication_year=2013&amp;author=Ali-Boucetta%2CH&amp;author=Bitounis%2CD&amp;author=Raveendran-Nair%2CR&amp;author=Servant%2CA&amp;author=Bossche%2CJ&amp;author=Kostarelos%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 162\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">163.<\/span>\n<p id=\"ref-CR163\" class=\"c-article-references__text\">Dell\u2019Orco D, Lundqvist M, Oslakovic C, Cedervall T, Linse S. Modeling the time evolution of the nanoparticle-protein corona in a body fluid. PLoS One. 2010;5(6):e10949-e.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1371%2Fjournal.pone.0010949\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 163\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXntlaqt7Y%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 163\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Modeling%20the%20time%20evolution%20of%20the%20nanoparticle-protein%20corona%20in%20a%20body%20fluid&amp;journal=PLoS%20One&amp;volume=5&amp;issue=6&amp;publication_year=2010&amp;author=Dell%E2%80%99Orco%2CD&amp;author=Lundqvist%2CM&amp;author=Oslakovic%2CC&amp;author=Cedervall%2CT&amp;author=Linse%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 163\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">164.<\/span>\n<p id=\"ref-CR164\" class=\"c-article-references__text\">Eudald C, Tobias P, Albert D, Gertie Janneke O, Victor P. Time evolution of the nanoparticle protein corona. ACS Nano. 2010;4(7):3623\u201332.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1021%2Fnn901372t\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 164\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXnsFGhtbc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 164\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Time%20evolution%20of%20the%20nanoparticle%20protein%20corona&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=7&amp;pages=3623-32&amp;publication_year=2010&amp;author=Eudald%2CC&amp;author=Tobias%2CP&amp;author=Albert%2CD&amp;author=Gertie%20Janneke%2CO&amp;author=Victor%2CP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 164\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">165.<\/span>\n<p id=\"ref-CR165\" class=\"c-article-references__text\">Aggarwal P, Hall JB, McLeland CB, Dobrovolskaia MA, McNeil SE. Nanoparticle interaction with plasma proteins as it relates to particle biodistribution, biocompatibility and therapeutic efficacy. Adv Drug Deliv Rev. 2009;61(6):428\u201337.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXmsF2js7w%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 165\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19376175\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 165\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3683962\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 165\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.addr.2009.03.009\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 165\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Nanoparticle%20interaction%20with%20plasma%20proteins%20as%20it%20relates%20to%20particle%20biodistribution%2C%20biocompatibility%20and%20therapeutic%20efficacy&amp;journal=Adv%20Drug%20Deliv%20Rev&amp;volume=61&amp;issue=6&amp;pages=428-37&amp;publication_year=2009&amp;author=Aggarwal%2CP&amp;author=Hall%2CJB&amp;author=McLeland%2CCB&amp;author=Dobrovolskaia%2CMA&amp;author=McNeil%2CSE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 165\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">166.<\/span>\n<p id=\"ref-CR166\" class=\"c-article-references__text\">Hu W, Peng C, Lv M, Li X, Zhang Y, Chen N, et al. Protein corona-mediated mitigation of cytotoxicity of graphene oxide. ACS Nano. 2011;5(5):3693\u2013700.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXkvFGjtro%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 166\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21500856\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 166\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn200021j\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 166\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Protein%20corona-mediated%20mitigation%20of%20cytotoxicity%20of%20graphene%20oxide&amp;journal=ACS%20Nano&amp;volume=5&amp;issue=5&amp;pages=3693-700&amp;publication_year=2011&amp;author=Hu%2CW&amp;author=Peng%2CC&amp;author=Lv%2CM&amp;author=Li%2CX&amp;author=Zhang%2CY&amp;author=Chen%2CN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 166\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">167.<\/span>\n<p id=\"ref-CR167\" class=\"c-article-references__text\">Duan G, Kang SG, Tian X, Garate JA, Zhao L, Ge C, et al. Protein corona mitigates the cytotoxicity of graphene oxide by reducing its physical interaction with cell membrane. Nanoscale. 2015;7:15214\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtlOgtr3L\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 167\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26315610\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 167\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC5NR01839K\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 167\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Protein%20corona%20mitigates%20the%20cytotoxicity%20of%20graphene%20oxide%20by%20reducing%20its%20physical%20interaction%20with%20cell%20membrane&amp;journal=Nanoscale&amp;volume=7&amp;pages=15214-24&amp;publication_year=2015&amp;author=Duan%2CG&amp;author=Kang%2CSG&amp;author=Tian%2CX&amp;author=Garate%2CJA&amp;author=Zhao%2CL&amp;author=Ge%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 167\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">168.<\/span>\n<p id=\"ref-CR168\" class=\"c-article-references__text\">Cuicui G, Jiangfeng D, Lina Z, Liming W, Ying L, Denghua L, et al. Binding of blood proteins to carbon nanotubes reduces cytotoxicity. Proc Natl Acad Sci U S A. 2011;108(41):16968\u201373.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1073%2Fpnas.1105270108\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 168\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Binding%20of%20blood%20proteins%20to%20carbon%20nanotubes%20reduces%20cytotoxicity&amp;journal=Proc%20Natl%20Acad%20Sci%20U%20S%20A&amp;volume=108&amp;issue=41&amp;pages=16968-73&amp;publication_year=2011&amp;author=Cuicui%2CG&amp;author=Jiangfeng%2CD&amp;author=Lina%2CZ&amp;author=Liming%2CW&amp;author=Ying%2CL&amp;author=Denghua%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 168\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">169.<\/span>\n<p id=\"ref-CR169\" class=\"c-article-references__text\">Li Y, Feng L, Shi X, Wang X, Yang Y, Yang K, et al. Surface coating-dependent cytotoxicity and degradation of graphene derivatives: towards the design of non-toxic, degradable nano-graphene. Small. 2014;10(8):1544\u201354.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhvFOltLnN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 169\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24376215\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 169\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fsmll.201303234\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 169\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Surface%20coating-dependent%20cytotoxicity%20and%20degradation%20of%20graphene%20derivatives%3A%20towards%20the%20design%20of%20non-toxic%2C%20degradable%20nano-graphene&amp;journal=Small&amp;volume=10&amp;issue=8&amp;pages=1544-54&amp;publication_year=2014&amp;author=Li%2CY&amp;author=Feng%2CL&amp;author=Shi%2CX&amp;author=Wang%2CX&amp;author=Yang%2CY&amp;author=Yang%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 169\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">170.<\/span>\n<p id=\"ref-CR170\" class=\"c-article-references__text\">Gurunathan S, Han J, Park JH, Kim JH. An in vitro evaluation of graphene oxide reduced by Ganoderma spp. in human breast cancer cells (MDA-MB-231). Int J Nanomed. 2014;9:1783\u201397.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.2147%2FIJN.S57735\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 170\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=An%20in%20vitro%20evaluation%20of%20graphene%20oxide%20reduced%20by%20Ganoderma%20spp.%20in%20human%20breast%20cancer%20cells%20%28MDA-MB-231%29&amp;journal=Int%20J%20Nanomed&amp;volume=9&amp;pages=1783-97&amp;publication_year=2014&amp;author=Gurunathan%2CS&amp;author=Han%2CJ&amp;author=Park%2CJH&amp;author=Kim%2CJH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 170\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">171.<\/span>\n<p id=\"ref-CR171\" class=\"c-article-references__text\">Yuan J, Gao H, Ching CB. Comparative protein profile of human hepatoma HepG2 cells treated with graphene and single-walled carbon nanotubes: an iTRAQ-coupled 2D LC-MS\/MS proteome analysis. Toxicol Lett. 2011;207(3):213\u201321.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXhtl2htrrL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 171\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21963432\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 171\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.toxlet.2011.09.014\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 171\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Comparative%20protein%20profile%20of%20human%20hepatoma%20HepG2%20cells%20treated%20with%20graphene%20and%20single-walled%20carbon%20nanotubes%3A%20an%20iTRAQ-coupled%202D%20LC-MS%2FMS%20proteome%20analysis&amp;journal=Toxicol%20Lett&amp;volume=207&amp;issue=3&amp;pages=213-21&amp;publication_year=2011&amp;author=Yuan%2CJ&amp;author=Gao%2CH&amp;author=Ching%2CCB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 171\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">172.<\/span>\n<p id=\"ref-CR172\" class=\"c-article-references__text\">Tomasio SM, Walsh TR. Modeling the binding affinity of peptides for graphitic surfaces. Influences of aromatic content and interfacial shape. J Phys Chem C. 2009;113(20):8778\u201385.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXkvVyktrk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 172\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fjp8087594\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 172\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Modeling%20the%20binding%20affinity%20of%20peptides%20for%20graphitic%20surfaces.%20Influences%20of%20aromatic%20content%20and%20interfacial%20shape&amp;journal=J%20Phys%20Chem%20C&amp;volume=113&amp;issue=20&amp;pages=8778-85&amp;publication_year=2009&amp;author=Tomasio%2CSM&amp;author=Walsh%2CTR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 172\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">173.<\/span>\n<p id=\"ref-CR173\" class=\"c-article-references__text\">Akhavan O, Ghaderi E. Toxicity of graphene and graphene oxide nanowalls against bacteria. ACS Nano. 2010;4(10):5731\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXht1Kht77K\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 173\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20925398\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 173\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn101390x\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 173\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxicity%20of%20graphene%20and%20graphene%20oxide%20nanowalls%20against%20bacteria&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=10&amp;pages=5731-6&amp;publication_year=2010&amp;author=Akhavan%2CO&amp;author=Ghaderi%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 173\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">174.<\/span>\n<p id=\"ref-CR174\" class=\"c-article-references__text\">Burton GJ, Jauniaux E. Oxidative stress. Best Pract Res Clin Obstet Gynaecol. 2011;25:287\u201399.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21130690\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 174\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3101336\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 174\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.bpobgyn.2010.10.016\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 174\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Oxidative%20stress&amp;journal=Best%20Pract%20Res%20Clin%20Obstet%20Gynaecol&amp;volume=25&amp;pages=287-99&amp;publication_year=2011&amp;author=Burton%2CGJ&amp;author=Jauniaux%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 174\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">175.<\/span>\n<p id=\"ref-CR175\" class=\"c-article-references__text\">Waiwijit U, Kandhavivorn W, Oonkhanond B, Lomas T, Phokaratkul D, Wisitsoraat A, et al. Cytotoxicity assessment of MDA-MB-231 breast cancer cells on screen-printed graphene-carbon paste substrate. Colloids Surf B Biointerf. 2014;113:190\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXitVWms77O\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 175\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.colsurfb.2013.09.008\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 175\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cytotoxicity%20assessment%20of%20MDA-MB-231%20breast%20cancer%20cells%20on%20screen-printed%20graphene-carbon%20paste%20substrate&amp;journal=Colloids%20Surf%20B%20Biointerf&amp;volume=113&amp;pages=190-7&amp;publication_year=2014&amp;author=Waiwijit%2CU&amp;author=Kandhavivorn%2CW&amp;author=Oonkhanond%2CB&amp;author=Lomas%2CT&amp;author=Phokaratkul%2CD&amp;author=Wisitsoraat%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 175\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">176.<\/span>\n<p id=\"ref-CR176\" class=\"c-article-references__text\">Chong Y, Ma Y, Shen H, Tu X, Zhou X, Xu J, et al. The in vitro and in vivo toxicity of graphene quantum dots. Biomaterials. 2014;35(19):5041\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXltFOmu74%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 176\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24685264\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 176\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2014.03.021\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 176\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20in%20vitro%20and%20in%20vivo%20toxicity%20of%20graphene%20quantum%20dots&amp;journal=Biomaterials&amp;volume=35&amp;issue=19&amp;pages=5041-8&amp;publication_year=2014&amp;author=Chong%2CY&amp;author=Ma%2CY&amp;author=Shen%2CH&amp;author=Tu%2CX&amp;author=Zhou%2CX&amp;author=Xu%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 176\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">177.<\/span>\n<p id=\"ref-CR177\" class=\"c-article-references__text\">Chen M, Yin J, Liang Y, Yuan S, Wang F, Song M, et al. Oxidative stress and immunotoxicity induced by graphene oxide in zebrafish. Aqua Toxicol. 2016;174(1879\u20131514 (Electronic)):54\u201360.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XjtFOksbk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 177\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.aquatox.2016.02.015\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 177\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Oxidative%20stress%20and%20immunotoxicity%20induced%20by%20graphene%20oxide%20in%20zebrafish&amp;journal=Aqua%20Toxicol&amp;volume=174&amp;issue=1879%E2%80%931514%20%28Electronic%29&amp;pages=54-60&amp;publication_year=2016&amp;author=Chen%2CM&amp;author=Yin%2CJ&amp;author=Liang%2CY&amp;author=Yuan%2CS&amp;author=Wang%2CF&amp;author=Song%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 177\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">178.<\/span>\n<p id=\"ref-CR178\" class=\"c-article-references__text\">Meng C, Zhi X, Li C, Li C, Chen Z, Qiu X, et al. Graphene oxides decorated with carnosine as an adjuvant to modulate innate immune and improve adaptive immunity in vivo. ACS Nano. 2016;10(1936-086X (Electronic)):2203\u201313.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XnvFCktA%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 178\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26766427\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 178\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facsnano.5b06750\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 178\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxides%20decorated%20with%20carnosine%20as%20an%20adjuvant%20to%20modulate%20innate%20immune%20and%20improve%20adaptive%20immunity%20in%20vivo&amp;journal=ACS%20Nano&amp;volume=10&amp;issue=1936-086X%20%28Electronic%29&amp;pages=2203-13&amp;publication_year=2016&amp;author=Meng%2CC&amp;author=Zhi%2CX&amp;author=Li%2CC&amp;author=Li%2CC&amp;author=Chen%2CZ&amp;author=Qiu%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 178\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">179.<\/span>\n<p id=\"ref-CR179\" class=\"c-article-references__text\">Ravichandran P, Baluchamy S, Sadanandan B, Gopikrishnan R, Biradar S, Ramesh V, et al. Multiwalled carbon nanotubes activate NF-\u03baB and AP-1 signaling pathways to induce apoptosis in rat lung epithelial cells. Apoptosis. 2010;15(12):1507\u201316.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhsFWns7jJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 179\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20694747\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 179\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs10495-010-0532-6\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 179\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Multiwalled%20carbon%20nanotubes%20activate%20NF-%CE%BAB%20and%20AP-1%20signaling%20pathways%20to%20induce%20apoptosis%20in%20rat%20lung%20epithelial%20cells&amp;journal=Apoptosis&amp;volume=15&amp;issue=12&amp;pages=1507-16&amp;publication_year=2010&amp;author=Ravichandran%2CP&amp;author=Baluchamy%2CS&amp;author=Sadanandan%2CB&amp;author=Gopikrishnan%2CR&amp;author=Biradar%2CS&amp;author=Ramesh%2CV\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 179\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">180.<\/span>\n<p id=\"ref-CR180\" class=\"c-article-references__text\">Lammel T, Boisseaux P, Fernandez-Cruz ML, Navas JM. Internalization and cytotoxicity of graphene oxide and carboxyl graphene nanoplatelets in the human hepatocellular carcinoma cell line Hep G2. Part Fibre Toxicol. 2013;10:27.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtlamsLrP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 180\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23849434\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 180\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3734190\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 180\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1186%2F1743-8977-10-27\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 180\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Internalization%20and%20cytotoxicity%20of%20graphene%20oxide%20and%20carboxyl%20graphene%20nanoplatelets%20in%20the%20human%20hepatocellular%20carcinoma%20cell%20line%20Hep%20G2&amp;journal=Part%20Fibre%20Toxicol&amp;volume=10&amp;publication_year=2013&amp;author=Lammel%2CT&amp;author=Boisseaux%2CP&amp;author=Fernandez-Cruz%2CML&amp;author=Navas%2CJM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 180\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">181.<\/span>\n<p id=\"ref-CR181\" class=\"c-article-references__text\">Gurunathan S, Han JW, Eppakayala V, Kim JH. Green synthesis of graphene and its cytotoxic effects in human breast cancer cells. Int J Nanomedicine. 2013;8:1015\u201327.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23687445\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 181\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3655623\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 181\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2147%2FIJN.S42047\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 181\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXltVKjsLc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 181\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Green%20synthesis%20of%20graphene%20and%20its%20cytotoxic%20effects%20in%20human%20breast%20cancer%20cells&amp;journal=Int%20J%20Nanomedicine&amp;volume=8&amp;pages=1015-27&amp;publication_year=2013&amp;author=Gurunathan%2CS&amp;author=Han%2CJW&amp;author=Eppakayala%2CV&amp;author=Kim%2CJH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 181\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">182.<\/span>\n<p id=\"ref-CR182\" class=\"c-article-references__text\">Salas EC, Sun Z, Luttge A, Tour JM. Reduction of graphene oxide via bacterial respiration. ACS Nano. 2010;4(8):4852\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXptFOqsbs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 182\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20731460\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 182\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn101081t\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 182\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Reduction%20of%20graphene%20oxide%20via%20bacterial%20respiration&amp;journal=ACS%20Nano&amp;volume=4&amp;issue=8&amp;pages=4852-6&amp;publication_year=2010&amp;author=Salas%2CEC&amp;author=Sun%2CZ&amp;author=Luttge%2CA&amp;author=Tour%2CJM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 182\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">183.<\/span>\n<p id=\"ref-CR183\" class=\"c-article-references__text\">Shekaramiz E. Immobilization of mitochondria on graphene. Dissert Theses Gradworks. 2012;217(1):120\u201331.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Immobilization%20of%20mitochondria%20on%20graphene&amp;journal=Dissert%20Theses%20Gradworks&amp;volume=217&amp;issue=1&amp;pages=120-31&amp;publication_year=2012&amp;author=Shekaramiz%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 183\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">184.<\/span>\n<p id=\"ref-CR184\" class=\"c-article-references__text\">Park EJ, Lee GH, Han BS, Lee BS, Lee S, Cho MH, et al. Toxic response of graphene nanoplatelets in vivo and in vitro. Arch Toxicol. 2015;89(9):1557\u201368.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhtVOns7jE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 184\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24980260\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 184\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1007%2Fs00204-014-1303-x\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 184\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toxic%20response%20of%20graphene%20nanoplatelets%20in%20vivo%20and%20in%20vitro&amp;journal=Arch%20Toxicol&amp;volume=89&amp;issue=9&amp;pages=1557-68&amp;publication_year=2015&amp;author=Park%2CEJ&amp;author=Lee%2CGH&amp;author=Han%2CBS&amp;author=Lee%2CBS&amp;author=Lee%2CS&amp;author=Cho%2CMH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 184\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">185.<\/span>\n<p id=\"ref-CR185\" class=\"c-article-references__text\">Chatterjee N, Yang J, Choi J. Differential genotoxic and epigenotoxic effects of graphene family nanomaterials (GFNs) in human bronchial epithelial cells. Mutat Res Gen Tox En. 2016;798(1879\u20133592 (Electronic)):1\u201310.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1016%2Fj.mrgentox.2016.01.006\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 185\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XjtVCgs7g%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 185\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Differential%20genotoxic%20and%20epigenotoxic%20effects%20of%20graphene%20family%20nanomaterials%20%28GFNs%29%20in%20human%20bronchial%20epithelial%20cells&amp;journal=Mutat%20Res%20Gen%20Tox%20En&amp;volume=798&amp;issue=1879%E2%80%933592%20%28Electronic%29&amp;pages=1-10&amp;publication_year=2016&amp;author=Chatterjee%2CN&amp;author=Yang%2CJ&amp;author=Choi%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 185\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">186.<\/span>\n<p id=\"ref-CR186\" class=\"c-article-references__text\">Ivask A, Voelcker NH, Seabrook SA, Hor M, Kirby JK, Fenech M, et al. DNA melting and genotoxicity induced by silver nanoparticles and graphene. Chem Res Toxicol. 2015;28(1520\u20135010 (Electronic)):1023\u201335.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXksFSrs7Y%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 186\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25781053\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 186\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Facs.chemrestox.5b00052\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 186\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=DNA%20melting%20and%20genotoxicity%20induced%20by%20silver%20nanoparticles%20and%20graphene&amp;journal=Chem%20Res%20Toxicol&amp;volume=28&amp;issue=1520%E2%80%935010%20%28Electronic%29&amp;pages=1023-35&amp;publication_year=2015&amp;author=Ivask%2CA&amp;author=Voelcker%2CNH&amp;author=Seabrook%2CSA&amp;author=Hor%2CM&amp;author=Kirby%2CJK&amp;author=Fenech%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 186\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">187.<\/span>\n<p id=\"ref-CR187\" class=\"c-article-references__text\">Magdolenova Z, Collins A, Kumar A, Dhawan A, Stone V, Dusinska M. Mechanisms of genotoxicity. A review of in vitro and in vivo studies with engineered nanoparticles. Nanotoxicology. 2014;8(3):233\u201378.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhvFemurrP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 187\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23379603\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 187\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.3109%2F17435390.2013.773464\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 187\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Mechanisms%20of%20genotoxicity.%20A%20review%20of%20in%20vitro%20and%20in%20vivo%20studies%20with%20engineered%20nanoparticles&amp;journal=Nanotoxicology&amp;volume=8&amp;issue=3&amp;pages=233-78&amp;publication_year=2014&amp;author=Magdolenova%2CZ&amp;author=Collins%2CA&amp;author=Kumar%2CA&amp;author=Dhawan%2CA&amp;author=Stone%2CV&amp;author=Dusinska%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 187\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">188.<\/span>\n<p id=\"ref-CR188\" class=\"c-article-references__text\">Golbamaki N, Rasulev B, Cassano A, Marchese Robinson RL, Benfenati E, Leszczynski J, et al. Genotoxicity of metal oxide nanomaterials: review of recent data and discussion of possible mechanisms. Nanoscale. 2015;7(6):2154\u201398.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitFags77J\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 188\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25580680\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 188\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1039%2FC4NR06670G\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 188\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Genotoxicity%20of%20metal%20oxide%20nanomaterials%3A%20review%20of%20recent%20data%20and%20discussion%20of%20possible%20mechanisms&amp;journal=Nanoscale&amp;volume=7&amp;issue=6&amp;pages=2154-98&amp;publication_year=2015&amp;author=Golbamaki%2CN&amp;author=Rasulev%2CB&amp;author=Cassano%2CA&amp;author=Marchese%20Robinson%2CRL&amp;author=Benfenati%2CE&amp;author=Leszczynski%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 188\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">189.<\/span>\n<p id=\"ref-CR189\" class=\"c-article-references__text\">Zhao X. Self-assembly of DNA segments on graphene and carbon nanotube arrays in aqueous solution: A molecular simulation study. J Phys Chem C. 2011;115(14):6181\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXjsVClsrc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 189\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fjp110013r\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 189\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Self-assembly%20of%20DNA%20segments%20on%20graphene%20and%20carbon%20nanotube%20arrays%20in%20aqueous%20solution%3A%20A%20molecular%20simulation%20study&amp;journal=J%20Phys%20Chem%20C&amp;volume=115&amp;issue=14&amp;pages=6181-9&amp;publication_year=2011&amp;author=Zhao%2CX\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 189\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">190.<\/span>\n<p id=\"ref-CR190\" class=\"c-article-references__text\">Ciccia A, Elledge SJ. The DNA damage response: making it safe to play with knives. Mol Cell. 2010;40(2):179\u2013204.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXhtlCjtr7P\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 190\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20965415\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 190\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC2988877\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 190\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.molcel.2010.09.019\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 190\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20DNA%20damage%20response%3A%20making%20it%20safe%20to%20play%20with%20knives&amp;journal=Mol%20Cell&amp;volume=40&amp;issue=2&amp;pages=179-204&amp;publication_year=2010&amp;author=Ciccia%2CA&amp;author=Elledge%2CSJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 190\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">191.<\/span>\n<p id=\"ref-CR191\" class=\"c-article-references__text\">Satoshi F, Macconmara MP, Maung AA, Yan Z, Mannick JA, Lederer JA, et al. Platelet depletion in mice increases mortality after thermal injury. Blood. 2006;107(11):4399\u2013406.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1182%2Fblood-2005-09-3776\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 191\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD28Xlt1Cgsbw%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 191\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Platelet%20depletion%20in%20mice%20increases%20mortality%20after%20thermal%20injury&amp;journal=Blood&amp;volume=107&amp;issue=11&amp;pages=4399-406&amp;publication_year=2006&amp;author=Satoshi%2CF&amp;author=Macconmara%2CMP&amp;author=Maung%2CAA&amp;author=Yan%2CZ&amp;author=Mannick%2CJA&amp;author=Lederer%2CJA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 191\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">192.<\/span>\n<p id=\"ref-CR192\" class=\"c-article-references__text\">Chen GY, Yang HJ, Lu CH, Chao YC, Hwang SM, Chen CL, et al. Simultaneous induction of autophagy and toll-like receptor signaling pathways by graphene oxide. Biomaterials. 2012;33(27):6559\u201369.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xos1ehtLc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 192\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22704844\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 192\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.05.064\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 192\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Simultaneous%20induction%20of%20autophagy%20and%20toll-like%20receptor%20signaling%20pathways%20by%20graphene%20oxide&amp;journal=Biomaterials&amp;volume=33&amp;issue=27&amp;pages=6559-69&amp;publication_year=2012&amp;author=Chen%2CGY&amp;author=Yang%2CHJ&amp;author=Lu%2CCH&amp;author=Chao%2CYC&amp;author=Hwang%2CSM&amp;author=Chen%2CCL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 192\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">193.<\/span>\n<p id=\"ref-CR193\" class=\"c-article-references__text\">Zhou H, Zhao K, Li W, Yang N, Liu Y, Chen C, et al. The interactions between pristine graphene and macrophages and the production of cytokines\/chemokines via TLR- and NF-kappaB-related signaling pathways. Biomaterials. 2012;33(29):6933\u201342.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtVaktrnL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 193\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22796167\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 193\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.06.064\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 193\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20interactions%20between%20pristine%20graphene%20and%20macrophages%20and%20the%20production%20of%20cytokines%2Fchemokines%20via%20TLR-%20and%20NF-kappaB-related%20signaling%20pathways&amp;journal=Biomaterials&amp;volume=33&amp;issue=29&amp;pages=6933-42&amp;publication_year=2012&amp;author=Zhou%2CH&amp;author=Zhao%2CK&amp;author=Li%2CW&amp;author=Yang%2CN&amp;author=Liu%2CY&amp;author=Chen%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 193\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">194.<\/span>\n<p id=\"ref-CR194\" class=\"c-article-references__text\">Lawrence T. The nuclear factor NF-kappaB pathway in inflammation. Cold Spring Harb Perspect Biol. 2009;1(1943\u20130264 (Electronic)):a001651.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20457564\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 194\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC2882124\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 194\">PubMed Central<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20nuclear%20factor%20NF-kappaB%20pathway%20in%20inflammation&amp;journal=Cold%20Spring%20Harb%20Perspect%20Biol&amp;volume=1&amp;issue=1943%E2%80%930264%20%28Electronic%29&amp;publication_year=2009&amp;author=Lawrence%2CT\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 194\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">195.<\/span>\n<p id=\"ref-CR195\" class=\"c-article-references__text\">Hengartner MO. The biochemistry of apoptosis. Nature. 2000;407(6805):770\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD3cXnsFWrsLc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 195\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=11048727\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 195\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2F35037710\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 195\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20biochemistry%20of%20apoptosis&amp;journal=Nature&amp;volume=407&amp;issue=6805&amp;pages=770-6&amp;publication_year=2000&amp;author=Hengartner%2CMO\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 195\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">196.<\/span>\n<p id=\"ref-CR196\" class=\"c-article-references__text\">Matesanz MC, Vila M, Feito MJ, Linares J, Goncalves G, Vallet-Regi M, et al. The effects of graphene oxide nanosheets localized on F-actin filaments on cell-cycle alterations. Biomaterials. 2013;34(5):1562\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhslWrsLfI\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 196\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23177613\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 196\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.11.001\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 196\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20effects%20of%20graphene%20oxide%20nanosheets%20localized%20on%20F-actin%20filaments%20on%20cell-cycle%20alterations&amp;journal=Biomaterials&amp;volume=34&amp;issue=5&amp;pages=1562-9&amp;publication_year=2013&amp;author=Matesanz%2CMC&amp;author=Vila%2CM&amp;author=Feito%2CMJ&amp;author=Linares%2CJ&amp;author=Goncalves%2CG&amp;author=Vallet-Regi%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 196\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">197.<\/span>\n<p id=\"ref-CR197\" class=\"c-article-references__text\">Yao Y, Costa M. Genetic and epigenetic effects of nanoparticles. J Mol Genet Med. 2013;7:86.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Genetic%20and%20epigenetic%20effects%20of%20nanoparticles&amp;journal=J%20Mol%20Genet%20Med&amp;volume=7&amp;publication_year=2013&amp;author=Yao%2CY&amp;author=Costa%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 197\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">198.<\/span>\n<p id=\"ref-CR198\" class=\"c-article-references__text\">Stern ST, Adiseshaiah PP, Crist RM. Autophagy and lysosomal dysfunction as emerging mechanisms of nanomaterial toxicity. Part Fibre Toxicol. 2012;9(1743\u20138977 (Electronic)):1.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Autophagy%20and%20lysosomal%20dysfunction%20as%20emerging%20mechanisms%20of%20nanomaterial%20toxicity&amp;journal=Part%20Fibre%20Toxicol&amp;volume=9&amp;issue=1743%E2%80%938977%20%28Electronic%29&amp;publication_year=2012&amp;author=Stern%2CST&amp;author=Adiseshaiah%2CPP&amp;author=Crist%2CRM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 198\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">199.<\/span>\n<p id=\"ref-CR199\" class=\"c-article-references__text\">Mizushima N, Yoshimori T, Levine B. Methods in mammalian autophagy research. Cel. 2010;140(1097\u20134172 (Electronic)):313\u201326.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXlt1KlsLc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 199\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.cell.2010.01.028\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 199\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Methods%20in%20mammalian%20autophagy%20research&amp;journal=Cel&amp;volume=140&amp;issue=1097%E2%80%934172%20%28Electronic%29&amp;pages=313-26&amp;publication_year=2010&amp;author=Mizushima%2CN&amp;author=Yoshimori%2CT&amp;author=Levine%2CB\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 199\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">200.<\/span>\n<p id=\"ref-CR200\" class=\"c-article-references__text\">Patel AS, Lin L, Geyer A, Haspel JA, An CH, Cao J, et al. Autophagy in idiopathic pulmonary fibrosis. PLoS One. 2012;7(1932\u20136203 (Electronic)):e41394.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtV2msLrJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 200\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22815997\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 200\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3399849\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 200\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1371%2Fjournal.pone.0041394\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 200\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Autophagy%20in%20idiopathic%20pulmonary%20fibrosis&amp;journal=PLoS%20One&amp;volume=7&amp;issue=1932%E2%80%936203%20%28Electronic%29&amp;publication_year=2012&amp;author=Patel%2CAS&amp;author=Lin%2CL&amp;author=Geyer%2CA&amp;author=Haspel%2CJA&amp;author=An%2CCH&amp;author=Cao%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 200\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">201.<\/span>\n<p id=\"ref-CR201\" class=\"c-article-references__text\">Levine B, Mizushima N, Virgin HW. Autophagy in immunity and inflammation. Nature. 2011;469(7330):323\u201335.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXnvVKqtw%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 201\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=21248839\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 201\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3131688\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 201\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnature09782\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 201\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Autophagy%20in%20immunity%20and%20inflammation&amp;journal=Nature&amp;volume=469&amp;issue=7330&amp;pages=323-35&amp;publication_year=2011&amp;author=Levine%2CB&amp;author=Mizushima%2CN&amp;author=Virgin%2CHW\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 201\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">202.<\/span>\n<p id=\"ref-CR202\" class=\"c-article-references__text\">Kenzaoui BH, Bernasconi CC, Guney-Ayra S, Juillerat-Jeanneret L. Induction of oxidative stress, lysosome activation and autophagy by nanoparticles in human brain-derived endothelial cells. Biochem J. 2012;441(1470\u20138728 (Electronic)):813\u201321.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Induction%20of%20oxidative%20stress%2C%20lysosome%20activation%20and%20autophagy%20by%20nanoparticles%20in%20human%20brain-derived%20endothelial%20cells&amp;journal=Biochem%20J&amp;volume=441&amp;issue=1470%E2%80%938728%20%28Electronic%29&amp;pages=813-21&amp;publication_year=2012&amp;author=Kenzaoui%2CBH&amp;author=Bernasconi%2CCC&amp;author=Guney-Ayra%2CS&amp;author=Juillerat-Jeanneret%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 202\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">203.<\/span>\n<p id=\"ref-CR203\" class=\"c-article-references__text\">Hussain S, Garantziotis S. Interplay between apoptotic and autophagy pathways after exposure to cerium dioxide nanoparticles in human monocytes. Autophagy. 2013;9(1554\u20138635 (Electronic)):101\u20133.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXjtlKgs7c%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 203\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23047327\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 203\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3542208\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 203\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.4161%2Fauto.22266\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 203\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Interplay%20between%20apoptotic%20and%20autophagy%20pathways%20after%20exposure%20to%20cerium%20dioxide%20nanoparticles%20in%20human%20monocytes&amp;journal=Autophagy&amp;volume=9&amp;issue=1554%E2%80%938635%20%28Electronic%29&amp;pages=101-3&amp;publication_year=2013&amp;author=Hussain%2CS&amp;author=Garantziotis%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 203\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">204.<\/span>\n<p id=\"ref-CR204\" class=\"c-article-references__text\">Sun T, Yan Y, Zhao Y, Guo F, Jiang C. Copper oxide nanoparticles induce autophagic cell death in A549 cells. PLoS One. 2012;7(1932\u20136203 (Electronic)):e43442.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38Xht1Ggu7fM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 204\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22916263\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 204\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3423358\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 204\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1371%2Fjournal.pone.0043442\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 204\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Copper%20oxide%20nanoparticles%20induce%20autophagic%20cell%20death%20in%20A549%20cells&amp;journal=PLoS%20One&amp;volume=7&amp;issue=1932%E2%80%936203%20%28Electronic%29&amp;publication_year=2012&amp;author=Sun%2CT&amp;author=Yan%2CY&amp;author=Zhao%2CY&amp;author=Guo%2CF&amp;author=Jiang%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 204\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">205.<\/span>\n<p id=\"ref-CR205\" class=\"c-article-references__text\">Chen GY, Meng CL, Lin KC, Tuan HY, Yang HJ, Chen CL, et al. Graphene oxide as a chemosensitizer: Diverted autophagic flux, enhanced nuclear import, elevated necrosis and improved antitumor effects. Biomaterials. 2015;40:12\u201322.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25498801\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 205\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2014.11.034\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 205\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXitVShtrnI\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 205\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20as%20a%20chemosensitizer%3A%20Diverted%20autophagic%20flux%2C%20enhanced%20nuclear%20import%2C%20elevated%20necrosis%20and%20improved%20antitumor%20effects&amp;journal=Biomaterials&amp;volume=40&amp;pages=12-22&amp;publication_year=2015&amp;author=Chen%2CGY&amp;author=Meng%2CCL&amp;author=Lin%2CKC&amp;author=Tuan%2CHY&amp;author=Yang%2CHJ&amp;author=Chen%2CCL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 205\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">206.<\/span>\n<p id=\"ref-CR206\" class=\"c-article-references__text\">Chen GY, Chen CL, Tuan HY, Yuan PX, Li KC, Yang HJ, et al. Graphene oxide triggers toll-like receptors\/autophagy responses in vitro and inhibits tumor growth in vivo. Adv Healthc Mater. 2014;3(9):1486\u201395.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXhsV2gurbL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 206\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24652749\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 206\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fadhm.201300591\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 206\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20oxide%20triggers%20toll-like%20receptors%2Fautophagy%20responses%20in%20vitro%20and%20inhibits%20tumor%20growth%20in%20vivo&amp;journal=Adv%20Healthc%20Mater&amp;volume=3&amp;issue=9&amp;pages=1486-95&amp;publication_year=2014&amp;author=Chen%2CGY&amp;author=Chen%2CCL&amp;author=Tuan%2CHY&amp;author=Yuan%2CPX&amp;author=Li%2CKC&amp;author=Yang%2CHJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 206\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">207.<\/span>\n<p id=\"ref-CR207\" class=\"c-article-references__text\">Wan B, Wang ZX, Lv QY, Dong PX, Zhao LX, Yang Y, et al. Single-walled carbon nanotubes and graphene oxides induce autophagosome accumulation and lysosome impairment in primarily cultured murine peritoneal macrophages. Toxicol Lett. 2013;221(1879\u20133169 (Electronic)):118\u201327.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtFChtLrM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 207\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23769962\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 207\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.toxlet.2013.06.208\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 207\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Single-walled%20carbon%20nanotubes%20and%20graphene%20oxides%20induce%20autophagosome%20accumulation%20and%20lysosome%20impairment%20in%20primarily%20cultured%20murine%20peritoneal%20macrophages&amp;journal=Toxicol%20Lett&amp;volume=221&amp;issue=1879%E2%80%933169%20%28Electronic%29&amp;pages=118-27&amp;publication_year=2013&amp;author=Wan%2CB&amp;author=Wang%2CZX&amp;author=Lv%2CQY&amp;author=Dong%2CPX&amp;author=Zhao%2CLX&amp;author=Yang%2CY\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 207\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">208.<\/span>\n<p id=\"ref-CR208\" class=\"c-article-references__text\">Markovic ZM, Ristic BZ, Arsikin KM, Klisic DG, Harhaji-Trajkovic LM, Todorovic-Markovic BM, et al. Graphene quantum dots as autophagy-inducing photodynamic agents. Biomaterials. 2012;33(29):7084\u201392.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhtVehsLvE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 208\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22795854\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 208\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2012.06.060\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 208\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20quantum%20dots%20as%20autophagy-inducing%20photodynamic%20agents&amp;journal=Biomaterials&amp;volume=33&amp;issue=29&amp;pages=7084-92&amp;publication_year=2012&amp;author=Markovic%2CZM&amp;author=Ristic%2CBZ&amp;author=Arsikin%2CKM&amp;author=Klisic%2CDG&amp;author=Harhaji-Trajkovic%2CLM&amp;author=Todorovic-Markovic%2CBM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 208\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">209.<\/span>\n<p id=\"ref-CR209\" class=\"c-article-references__text\">Sanjuan MA, Dillon CP, Tait SW, Moshiach S, Dorsey F, Connell S, et al. Toll-like receptor signalling in macrophages links the autophagy pathway to phagocytosis. Nature. 2007;450(7173):1253\u20137.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD2sXhsVGjsL7I\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 209\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=18097414\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 209\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnature06421\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 209\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Toll-like%20receptor%20signalling%20in%20macrophages%20links%20the%20autophagy%20pathway%20to%20phagocytosis&amp;journal=Nature&amp;volume=450&amp;issue=7173&amp;pages=1253-7&amp;publication_year=2007&amp;author=Sanjuan%2CMA&amp;author=Dillon%2CCP&amp;author=Tait%2CSW&amp;author=Moshiach%2CS&amp;author=Dorsey%2CF&amp;author=Connell%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 209\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">210.<\/span>\n<p id=\"ref-CR210\" class=\"c-article-references__text\">Sasidharan A, Swaroop S, Chandran P, Nair S, Koyakutty M. Cellular and molecular mechanistic insight into the DNA-damaging potential of few-layer graphene in human primary endothelial cells. Nanomed. 2016;12(1549\u20139642 (Electronic)):1347\u201355.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XksVWqtrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 210\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Cellular%20and%20molecular%20mechanistic%20insight%20into%20the%20DNA-damaging%20potential%20of%20few-layer%20graphene%20in%20human%20primary%20endothelial%20cells&amp;journal=Nanomed&amp;volume=12&amp;issue=1549%E2%80%939642%20%28Electronic%29&amp;pages=1347-55&amp;publication_year=2016&amp;author=Sasidharan%2CA&amp;author=Swaroop%2CS&amp;author=Chandran%2CP&amp;author=Nair%2CS&amp;author=Koyakutty%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 210\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">211.<\/span>\n<p id=\"ref-CR211\" class=\"c-article-references__text\">Yang H, Rivera Z, Jube S, Nasu M, Bertino P, Goparaju C, et al. Programmed necrosis induced by asbestos in human mesothelial cells causes high-mobility group box 1 protein release and resultant inflammation. Proc Natl Acad Sci U S A. 2010;107(1091\u20136490 (Electronic)):12611\u20136.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXpt1ehsr4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 211\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20616036\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 211\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC2906549\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 211\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1073%2Fpnas.1006542107\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 211\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Programmed%20necrosis%20induced%20by%20asbestos%20in%20human%20mesothelial%20cells%20causes%20high-mobility%20group%20box%201%20protein%20release%20and%20resultant%20inflammation&amp;journal=Proc%20Natl%20Acad%20Sci%20U%20S%20A&amp;volume=107&amp;issue=1091%E2%80%936490%20%28Electronic%29&amp;pages=12611-6&amp;publication_year=2010&amp;author=Yang%2CH&amp;author=Rivera%2CZ&amp;author=Jube%2CS&amp;author=Nasu%2CM&amp;author=Bertino%2CP&amp;author=Goparaju%2CC\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 211\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">212.<\/span>\n<p id=\"ref-CR212\" class=\"c-article-references__text\">Raucci A, Palumbo R, Bianchi ME. HMGB1: a signal of necrosis. Autoimmunity. 2007;40(4):285\u20139.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD2sXlsVOrsrs%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 212\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=17516211\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 212\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1080%2F08916930701356978\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 212\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=HMGB1%3A%20a%20signal%20of%20necrosis&amp;journal=Autoimmunity&amp;volume=40&amp;issue=4&amp;pages=285-9&amp;publication_year=2007&amp;author=Raucci%2CA&amp;author=Palumbo%2CR&amp;author=Bianchi%2CME\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 212\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">213.<\/span>\n<p id=\"ref-CR213\" class=\"c-article-references__text\">Smith ZD, Meissner A. DNA methylation: roles in mammalian development. Nat Rev Genet. 2013;14(3):204\u201320.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXitlaku7Y%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 213\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23400093\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 213\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnrg3354\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 213\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=DNA%20methylation%3A%20roles%20in%20mammalian%20development&amp;journal=Nat%20Rev%20Genet&amp;volume=14&amp;issue=3&amp;pages=204-20&amp;publication_year=2013&amp;author=Smith%2CZD&amp;author=Meissner%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 213\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">214.<\/span>\n<p id=\"ref-CR214\" class=\"c-article-references__text\">Fabian MR, Sonenberg N. The mechanics of miRNA-mediated gene silencing: a look under the hood of miRISC. Nat Struct Mol Biol. 2012;19(6):586\u201393.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XotVWhtLw%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 214\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22664986\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 214\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1038%2Fnsmb.2296\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 214\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=The%20mechanics%20of%20miRNA-mediated%20gene%20silencing%3A%20a%20look%20under%20the%20hood%20of%20miRISC&amp;journal=Nat%20Struct%20Mol%20Biol&amp;volume=19&amp;issue=6&amp;pages=586-93&amp;publication_year=2012&amp;author=Fabian%2CMR&amp;author=Sonenberg%2CN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 214\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">215.<\/span>\n<p id=\"ref-CR215\" class=\"c-article-references__text\">Nishikura K. Functions and regulation of RNA editing by ADAR deaminases. Annu Rev Biochem. 2010;79(79):321\u201349.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXpslShtr0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 215\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=20192758\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 215\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC2953425\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 215\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1146%2Fannurev-biochem-060208-105251\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 215\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Functions%20and%20regulation%20of%20RNA%20editing%20by%20ADAR%20deaminases&amp;journal=Annu%20Rev%20Biochem&amp;volume=79&amp;issue=79&amp;pages=321-49&amp;publication_year=2010&amp;author=Nishikura%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 215\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">216.<\/span>\n<p id=\"ref-CR216\" class=\"c-article-references__text\">Dubey P, Matai I, Kumar SU, Sachdev A, Bhushan B, Gopinath P. Perturbation of cellular mechanistic system by silver nanoparticle toxicity: Cytotoxic, genotoxic and epigenetic potentials. Adv Colloid Interf Sci. 2015;221:4\u201321.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXktFemtr4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 216\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.cis.2015.02.007\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 216\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Perturbation%20of%20cellular%20mechanistic%20system%20by%20silver%20nanoparticle%20toxicity%3A%20Cytotoxic%2C%20genotoxic%20and%20epigenetic%20potentials&amp;journal=Adv%20Colloid%20Interf%20Sci&amp;volume=221&amp;pages=4-21&amp;publication_year=2015&amp;author=Dubey%2CP&amp;author=Matai%2CI&amp;author=Kumar%2CSU&amp;author=Sachdev%2CA&amp;author=Bhushan%2CB&amp;author=Gopinath%2CP\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 216\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">217.<\/span>\n<p id=\"ref-CR217\" class=\"c-article-references__text\">Collins AR, Ferguson LR. DNA repair as a biomarker. Mutat Res. 2012;736(1\u20132):2\u20134.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XlvFylt70%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 217\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=22883934\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 217\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.mrfmmm.2012.03.008\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 217\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=DNA%20repair%20as%20a%20biomarker&amp;journal=Mutat%20Res&amp;volume=736&amp;issue=1%E2%80%932&amp;pages=2-4&amp;publication_year=2012&amp;author=Collins%2CAR&amp;author=Ferguson%2CLR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 217\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">218.<\/span>\n<p id=\"ref-CR218\" class=\"c-article-references__text\">Zhao Y, Wu Q, Wang D. An epigenetic signal encoded protection mechanism is activated by graphene oxide to inhibit its induced reproductive toxicity in Caenorhabditis elegans. Biomaterials. 2016;79(1878\u20135905 (Electronic)):15\u201324.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhvFOmu7bK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 218\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26686978\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 218\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2015.11.052\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 218\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=An%20epigenetic%20signal%20encoded%20protection%20mechanism%20is%20activated%20by%20graphene%20oxide%20to%20inhibit%20its%20induced%20reproductive%20toxicity%20in%20Caenorhabditis%20elegans&amp;journal=Biomaterials&amp;volume=79&amp;issue=1878%E2%80%935905%20%28Electronic%29&amp;pages=15-24&amp;publication_year=2016&amp;author=Zhao%2CY&amp;author=Wu%2CQ&amp;author=Wang%2CD\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 218\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">219.<\/span>\n<p id=\"ref-CR219\" class=\"c-article-references__text\">Liu C, Yu W, Chen Z, Zhang J, Zhang N. Enhanced gene transfection efficiency in CD13-positive vascular endothelial cells with targeted poly(lactic acid)-poly(ethylene glycol) nanoparticles through caveolae-mediated endocytosis. J Contr Rel. 2011;151(1873\u20134995 (Electronic)):162\u201375.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3MXmtVWgtLk%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 219\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.jconrel.2011.02.027\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 219\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Enhanced%20gene%20transfection%20efficiency%20in%20CD13-positive%20vascular%20endothelial%20cells%20with%20targeted%20poly%28lactic%20acid%29-poly%28ethylene%20glycol%29%20nanoparticles%20through%20caveolae-mediated%20endocytosis&amp;journal=J%20Contr%20Rel&amp;volume=151&amp;issue=1873%E2%80%934995%20%28Electronic%29&amp;pages=162-75&amp;publication_year=2011&amp;author=Liu%2CC&amp;author=Yu%2CW&amp;author=Chen%2CZ&amp;author=Zhang%2CJ&amp;author=Zhang%2CN\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 219\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">220.<\/span>\n<p id=\"ref-CR220\" class=\"c-article-references__text\">Ema M, Aoyama H, Arima A, Asano Y, Chihara K, Endoh K, et al. Historical control data on prenatal developmental toxicity studies in rabbits. Congenit Anom. 2012;52(3):155\u201361.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1111%2Fj.1741-4520.2012.00365.x\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 220\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Historical%20control%20data%20on%20prenatal%20developmental%20toxicity%20studies%20in%20rabbits&amp;journal=Congenit%20Anom&amp;volume=52&amp;issue=3&amp;pages=155-61&amp;publication_year=2012&amp;author=Ema%2CM&amp;author=Aoyama%2CH&amp;author=Arima%2CA&amp;author=Asano%2CY&amp;author=Chihara%2CK&amp;author=Endoh%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 220\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">221.<\/span>\n<p id=\"ref-CR221\" class=\"c-article-references__text\">Ema M, Endoh K, Fukushima R, Fujii S, Hara H, Hirata-Koizumi M, et al. Historical control data on developmental toxicity studies in rodents. Congenit Anom. 2014;54(3):150\u201361.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1111%2Fcga.12050\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 221\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Historical%20control%20data%20on%20developmental%20toxicity%20studies%20in%20rodents&amp;journal=Congenit%20Anom&amp;volume=54&amp;issue=3&amp;pages=150-61&amp;publication_year=2014&amp;author=Ema%2CM&amp;author=Endoh%2CK&amp;author=Fukushima%2CR&amp;author=Fujii%2CS&amp;author=Hara%2CH&amp;author=Hirata-Koizumi%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 221\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">222.<\/span>\n<p id=\"ref-CR222\" class=\"c-article-references__text\">Bitounis D, Ali-Boucetta H, Hong BH, Min DH, Kostarelos K. Prospects and challenges of graphene in biomedical applications. Adv Mater. 2013;25(16):2258\u201368.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXktFWmtL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 222\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23494834\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 222\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1002%2Fadma.201203700\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 222\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Prospects%20and%20challenges%20of%20graphene%20in%20biomedical%20applications&amp;journal=Adv%20Mater&amp;volume=25&amp;issue=16&amp;pages=2258-68&amp;publication_year=2013&amp;author=Bitounis%2CD&amp;author=Ali-Boucetta%2CH&amp;author=Hong%2CBH&amp;author=Min%2CDH&amp;author=Kostarelos%2CK\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 222\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">223.<\/span>\n<p id=\"ref-CR223\" class=\"c-article-references__text\">Van Goethem F, Lison D, Kirsch-Volders M. Comparative evaluation of the in vitro micronucleus test and the alkaline single cell gel electrophoresis assay for the detection of DNA damaging agents: genotoxic effects of cobalt powder, tungsten carbide and cobalt-tungsten carbide. Mutat Res. 1997;392(1\u20132):31\u201343.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=9269329\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 223\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2FS0165-1218%2897%2900043-8\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 223\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Comparative%20evaluation%20of%20the%20in%20vitro%20micronucleus%20test%20and%20the%20alkaline%20single%20cell%20gel%20electrophoresis%20assay%20for%20the%20detection%20of%20DNA%20damaging%20agents%3A%20genotoxic%20effects%20of%20cobalt%20powder%2C%20tungsten%20carbide%20and%20cobalt-tungsten%20carbide&amp;journal=Mutat%20Res&amp;volume=392&amp;issue=1%E2%80%932&amp;pages=31-43&amp;publication_year=1997&amp;author=Goethem%2CF&amp;author=Lison%2CD&amp;author=Kirsch-Volders%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 223\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">224.<\/span>\n<p id=\"ref-CR224\" class=\"c-article-references__text\">Natarajan V, Wilson CL, Hayward SL, Kidambi S. Titanium dioxide nanoparticles trigger loss of function and perturbation of mitochondrial dynamics in primary hepatocytes. PLoS One. 2015;10(1932\u20136203 (Electronic)):e0134541.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26247363\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 224\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4527597\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 224\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1371%2Fjournal.pone.0134541\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 224\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXitVelu7zO\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 224\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Titanium%20dioxide%20nanoparticles%20trigger%20loss%20of%20function%20and%20perturbation%20of%20mitochondrial%20dynamics%20in%20primary%20hepatocytes&amp;journal=PLoS%20One&amp;volume=10&amp;issue=1932%E2%80%936203%20%28Electronic%29&amp;publication_year=2015&amp;author=Natarajan%2CV&amp;author=Wilson%2CCL&amp;author=Hayward%2CSL&amp;author=Kidambi%2CS\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 224\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">225.<\/span>\n<p id=\"ref-CR225\" class=\"c-article-references__text\">Hong F, Zhao X, Chen M, Zhou Y, Ze Y, Wang L, et al. TiO2 nanoparticles-induced apoptosis of primary cultured Sertoli cells of mice. J Biochem Mater Res A. 2016;104(1552\u20134965 (Electronic)):124\u201335.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1002%2Fjbm.a.35548\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 225\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXhtlWgt7fI\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 225\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=TiO2%20nanoparticles-induced%20apoptosis%20of%20primary%20cultured%20Sertoli%20cells%20of%20mice&amp;journal=J%20Biochem%20Mater%20Res%20A&amp;volume=104&amp;issue=1552%E2%80%934965%20%28Electronic%29&amp;pages=124-35&amp;publication_year=2016&amp;author=Hong%2CF&amp;author=Zhao%2CX&amp;author=Chen%2CM&amp;author=Zhou%2CY&amp;author=Ze%2CY&amp;author=Wang%2CL\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 225\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">226.<\/span>\n<p id=\"ref-CR226\" class=\"c-article-references__text\">Yang WE, Lan MY, Lee SW, Chang JK, Huang HH. Primary human nasal epithelial cell response to titanium surface with a nanonetwork structure in nasal implant applications. Nanoscale Res Lett. 2015;10(1931\u20137573 (Print)):1\u201310.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Primary%20human%20nasal%20epithelial%20cell%20response%20to%20titanium%20surface%20with%20a%20nanonetwork%20structure%20in%20nasal%20implant%20applications&amp;journal=Nanoscale%20Res%20Lett&amp;volume=10&amp;issue=1931%E2%80%937573%20%28Print%29&amp;pages=1-10&amp;publication_year=2015&amp;author=Yang%2CWE&amp;author=Lan%2CMY&amp;author=Lee%2CSW&amp;author=Chang%2CJK&amp;author=Huang%2CHH\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 226\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">227.<\/span>\n<p id=\"ref-CR227\" class=\"c-article-references__text\">Wang J, Deng X, Zhang F, Chen D, Ding W. ZnO nanoparticle-induced oxidative stress triggers apoptosis by activating JNK signaling pathway in cultured primary astrocytes. Nanoscale Res Lett. 2014;9(1931\u20137573 (Print)):1\u201312.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=ZnO%20nanoparticle-induced%20oxidative%20stress%20triggers%20apoptosis%20by%20activating%20JNK%20signaling%20pathway%20in%20cultured%20primary%20astrocytes&amp;journal=Nanoscale%20Res%20Lett&amp;volume=9&amp;issue=1931%E2%80%937573%20%28Print%29&amp;pages=1-12&amp;publication_year=2014&amp;author=Wang%2CJ&amp;author=Deng%2CX&amp;author=Zhang%2CF&amp;author=Chen%2CD&amp;author=Ding%2CW\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 227\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">228.<\/span>\n<p id=\"ref-CR228\" class=\"c-article-references__text\">Osmond-McLeod MJ, Osmond RI, Oytam Y, McCall MJ, Feltis B, Mackay-Sim A, et al. Surface coatings of ZnO nanoparticles mitigate differentially a host of transcriptional, protein and signalling responses in primary human olfactory cells. Part Fibre Toxicol. 2013;10(1743\u20138977 (Electronic)):1.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Surface%20coatings%20of%20ZnO%20nanoparticles%20mitigate%20differentially%20a%20host%20of%20transcriptional%2C%20protein%20and%20signalling%20responses%20in%20primary%20human%20olfactory%20cells&amp;journal=Part%20Fibre%20Toxicol&amp;volume=10&amp;issue=1743%E2%80%938977%20%28Electronic%29&amp;publication_year=2013&amp;author=Osmond-McLeod%2CMJ&amp;author=Osmond%2CRI&amp;author=Oytam%2CY&amp;author=McCall%2CMJ&amp;author=Feltis%2CB&amp;author=Mackay-Sim%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 228\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">229.<\/span>\n<p id=\"ref-CR229\" class=\"c-article-references__text\">Meng S, Peng R. Growth and follow-up of primary cortical neuron cells on nonfunctionalized graphene nanosheet film. J Appl Biomater Funct Mater. 2016;14(2280\u20138000 (Electronic)):e26\u201334.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26952583\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 229\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Growth%20and%20follow-up%20of%20primary%20cortical%20neuron%20cells%20on%20nonfunctionalized%20graphene%20nanosheet%20film&amp;journal=J%20Appl%20Biomater%20Funct%20Mater&amp;volume=14&amp;issue=2280%E2%80%938000%20%28Electronic%29&amp;pages=e26-34&amp;publication_year=2016&amp;author=Meng%2CS&amp;author=Peng%2CR\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 229\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">230.<\/span>\n<p id=\"ref-CR230\" class=\"c-article-references__text\">Kwon JT, Seo GB, Jo, Lee M, Kim HM, Shim I, et al. Aluminum nanoparticles induce ERK and p38MAPK activation in rat brain. Toxicol Res. 2013;29(1976\u20138257 (Print)):181\u20135.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXjtlOrtb4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 230\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24386518\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 230\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC3877997\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 230\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.5487%2FTR.2013.29.3.181\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 230\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Aluminum%20nanoparticles%20induce%20ERK%20and%20p38MAPK%20activation%20in%20rat%20brain&amp;journal=Toxicol%20Res&amp;volume=29&amp;issue=1976%E2%80%938257%20%28Print%29&amp;pages=181-5&amp;publication_year=2013&amp;author=Kwon%2CJT&amp;author=Seo%2CGB&amp;author=Jo%2C&amp;author=Lee%2CM&amp;author=Kim%2CHM&amp;author=Shim%2CI\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 230\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">231.<\/span>\n<p id=\"ref-CR231\" class=\"c-article-references__text\">Radcliffe PM, Olabisi AO, Wagner DJ, Leavens T, Wong BA, Struve MF, et al. Acute sodium tungstate inhalation is associated with minimal olfactory transport of tungsten (188W) to the rat brain. Neurotoxicology. 2009;30(1872\u20139711 (Electronic)):445\u201350.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BD1MXmtFCjt7o%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 231\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=19442830\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 231\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.neuro.2009.02.004\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 231\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Acute%20sodium%20tungstate%20inhalation%20is%20associated%20with%20minimal%20olfactory%20transport%20of%20tungsten%20%28188W%29%20to%20the%20rat%20brain&amp;journal=Neurotoxicology&amp;volume=30&amp;issue=1872%E2%80%939711%20%28Electronic%29&amp;pages=445-50&amp;publication_year=2009&amp;author=Radcliffe%2CPM&amp;author=Olabisi%2CAO&amp;author=Wagner%2CDJ&amp;author=Leavens%2CT&amp;author=Wong%2CBA&amp;author=Struve%2CMF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 231\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">232.<\/span>\n<p id=\"ref-CR232\" class=\"c-article-references__text\">Zhang H, Li ZF, Snyder A, Xie J, Stanciu LA. Functionalized graphene oxide for the fabrication of paraoxon biosensors. Anal Chim Acta. 2014;827:86\u201394.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2cXmsVWhtL4%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 232\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=24832999\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 232\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.aca.2014.04.014\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 232\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Functionalized%20graphene%20oxide%20for%20the%20fabrication%20of%20paraoxon%20biosensors&amp;journal=Anal%20Chim%20Acta&amp;volume=827&amp;pages=86-94&amp;publication_year=2014&amp;author=Zhang%2CH&amp;author=Li%2CZF&amp;author=Snyder%2CA&amp;author=Xie%2CJ&amp;author=Stanciu%2CLA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 232\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">233.<\/span>\n<p id=\"ref-CR233\" class=\"c-article-references__text\">Schriver M, Regan W, Gannett WJ, Zaniewski AM, Crommie MF, Zettl A. Graphene as a long-term metal oxidation barrier: worse than nothing. ACS Nano. 2013;7(1936-086X (Electronic)):5763\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXptVCjtL0%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 233\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23755733\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 233\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1021%2Fnn4014356\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 233\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Graphene%20as%20a%20long-term%20metal%20oxidation%20barrier%3A%20worse%20than%20nothing&amp;journal=ACS%20Nano&amp;volume=7&amp;issue=1936-086X%20%28Electronic%29&amp;pages=5763-8&amp;publication_year=2013&amp;author=Schriver%2CM&amp;author=Regan%2CW&amp;author=Gannett%2CWJ&amp;author=Zaniewski%2CAM&amp;author=Crommie%2CMF&amp;author=Zettl%2CA\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 233\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">234.<\/span>\n<p id=\"ref-CR234\" class=\"c-article-references__text\">Soldano C, Mahmood A, Dujardin E. Production, properties and potential of graphene. Carbon. 2010;48(8):2127\u201350.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3cXksFGmsbc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 234\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.carbon.2010.01.058\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 234\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Production%2C%20properties%20and%20potential%20of%20graphene&amp;journal=Carbon&amp;volume=48&amp;issue=8&amp;pages=2127-50&amp;publication_year=2010&amp;author=Soldano%2CC&amp;author=Mahmood%2CA&amp;author=Dujardin%2CE\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 234\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">235.<\/span>\n<p id=\"ref-CR235\" class=\"c-article-references__text\">Han SG, Kim JK, Shin JH, Hwang JH, Lee JS, Kim TG, et al. Pulmonary Responses of Sprague\u2013Dawley Rats in Single Inhalation Exposure to Graphene Oxide Nanomaterials. Biomed Res Int. 2015;2015:376756.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26295037\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 235\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4534591\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 235\">PubMed Central<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Pulmonary%20Responses%20of%20Sprague%E2%80%93Dawley%20Rats%20in%20Single%20Inhalation%20Exposure%20to%20Graphene%20Oxide%20Nanomaterials&amp;journal=Biomed%20Res%20Int&amp;volume=2015&amp;publication_year=2015&amp;author=Han%2CSG&amp;author=Kim%2CJK&amp;author=Shin%2CJH&amp;author=Hwang%2CJH&amp;author=Lee%2CJS&amp;author=Kim%2CTG\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 235\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">236.<\/span>\n<p id=\"ref-CR236\" class=\"c-article-references__text\">Pan WY, Huang CC, Lin TT, Hu HY, Lin WC, Li MJ, et al. Synergistic antibacterial effects of localized heat and oxidative stress caused by hydroxyl radicals mediated by graphene\/iron oxide-based nanocomposites. Nanomedicine. 2016;12(2):431\u20138.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XhtlKgtw%253D%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 236\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=26711965\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 236\">PubMed<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Synergistic%20antibacterial%20effects%20of%20localized%20heat%20and%20oxidative%20stress%20caused%20by%20hydroxyl%20radicals%20mediated%20by%20graphene%2Firon%20oxide-based%20nanocomposites&amp;journal=Nanomedicine&amp;volume=12&amp;issue=2&amp;pages=431-8&amp;publication_year=2016&amp;author=Pan%2CWY&amp;author=Huang%2CCC&amp;author=Lin%2CTT&amp;author=Hu%2CHY&amp;author=Lin%2CWC&amp;author=Li%2CMJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 236\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">237.<\/span>\n<p id=\"ref-CR237\" class=\"c-article-references__text\">Yang K, Gong H, Shi X, Wan J, Zhang Y, Liu Z. Invivo biodistribution and toxicology of functionalized nano-graphene oxide in mice after oral and intraperitoneal administration. Biomaterials. 2013;34(11):2787\u201395.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC3sXhtFahsbo%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 237\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=23340196\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 237\">PubMed<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.biomaterials.2013.01.001\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 237\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Invivo%20biodistribution%20and%20toxicology%20of%20functionalized%20nano-graphene%20oxide%20in%20mice%20after%20oral%20and%20intraperitoneal%20administration&amp;journal=Biomaterials&amp;volume=34&amp;issue=11&amp;pages=2787-95&amp;publication_year=2013&amp;author=Yang%2CK&amp;author=Gong%2CH&amp;author=Shi%2CX&amp;author=Wan%2CJ&amp;author=Zhang%2CY&amp;author=Liu%2CZ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 237\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">238.<\/span>\n<p id=\"ref-CR238\" class=\"c-article-references__text\">Jaworski S, Sawosz E, Kutwin M, Wierzbicki M, Hinzmann M, Grodzik M, et al. In vitro and in vivo effects of graphene oxide and reduced graphene oxide on glioblastoma. Int J Nanomedicine. 2015;10:1585\u201396.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC2MXovVKksrc%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 238\">CAS<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;dopt=Abstract&amp;list_uids=25759581\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed reference 238\">PubMed<\/a>\u00a0 <a href=\"http:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC4346365\" rel=\"nofollow\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"PubMed Central reference 238\">PubMed Central<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.2217%2Fnnm.15.20\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 238\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=In%20vitro%20and%20in%20vivo%20effects%20of%20graphene%20oxide%20and%20reduced%20graphene%20oxide%20on%20glioblastoma&amp;journal=Int%20J%20Nanomedicine&amp;volume=10&amp;pages=1585-96&amp;publication_year=2015&amp;author=Jaworski%2CS&amp;author=Sawosz%2CE&amp;author=Kutwin%2CM&amp;author=Wierzbicki%2CM&amp;author=Hinzmann%2CM&amp;author=Grodzik%2CM\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 238\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">239.<\/span>\n<p id=\"ref-CR239\" class=\"c-article-references__text\">Akhavan O, Ghaderi E, Emamy H, Akhavan F. Genotoxicity of graphene nanoribbons in human mesenchymal stem cells. Carbon. 2013;54(2):419\u201331.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC38XhvFShtL7J\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 239\">CAS<\/a>\u00a0 <a href=\"https:\/\/doi.org\/10.1016%2Fj.carbon.2012.11.058\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 239\">Article<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Genotoxicity%20of%20graphene%20nanoribbons%20in%20human%20mesenchymal%20stem%20cells&amp;journal=Carbon&amp;volume=54&amp;issue=2&amp;pages=419-31&amp;publication_year=2013&amp;author=Akhavan%2CO&amp;author=Ghaderi%2CE&amp;author=Emamy%2CH&amp;author=Akhavan%2CF\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 239\"> Google Scholar<\/a><\/p>\n<\/li>\n<li class=\"c-article-references__item js-c-reading-companion-references-item\"><span class=\"c-article-references__counter\">240.<\/span>\n<p id=\"ref-CR240\" class=\"c-article-references__text\">Chatterjee N, Yang J, Choi J. Differential genotoxic and epigenotoxic effects of graphene family nanomaterials (GFNs) in human bronchial epithelial cells. Mut Res Gen Tox Environ Mutagenesis. 2016;798\u2013799:1\u201310.<\/p>\n<p class=\"c-article-references__links u-hide-print\"><a href=\"https:\/\/doi.org\/10.1016%2Fj.mrgentox.2016.01.006\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Article reference 240\">Article<\/a>\u00a0 <a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/cas-redirect\/1%3ACAS%3A528%3ADC%252BC28XjtVCgs7g%253D\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"CAS reference 240\">CAS<\/a>\u00a0 <a href=\"http:\/\/scholar.google.com\/scholar_lookup?&amp;title=Differential%20genotoxic%20and%20epigenotoxic%20effects%20of%20graphene%20family%20nanomaterials%20%28GFNs%29%20in%20human%20bronchial%20epithelial%20cells&amp;journal=Mut%20Res%20Gen%20Tox%20Environ%20Mutagenesis&amp;volume=798%E2%80%93799&amp;pages=1-10&amp;publication_year=2016&amp;author=Chatterjee%2CN&amp;author=Yang%2CJ&amp;author=Choi%2CJ\" data-track=\"click\" data-track-action=\"outbound reference\" data-track-label=\"link\" aria-label=\"Google Scholar reference 240\"> Google Scholar<\/a><\/p>\n<\/li>\n<\/ol>\n<p class=\"c-article-references__download u-hide-print\"><a href=\"https:\/\/citation-needed.springer.com\/v2\/references\/10.1186\/s12989-016-0168-y?format=refman&amp;flavour=references\" data-track=\"click\" data-track-action=\"download citation references\" data-track-label=\"link\">Download references<\/a><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<\/div>\n<section data-title=\"Acknowledgements\">\n<div id=\"Ack1-section\" class=\"c-article-section\">\n<h2 id=\"Ack1\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Acknowledgements<\/h2>\n<div id=\"Ack1-content\" class=\"c-article-section__content\">\n<p>Not applicable.<\/p>\n<h3 id=\"FPar1\" class=\"c-article__sub-heading\">Funding<\/h3>\n<p>This review was supported by the National Natural Science Foundation of China (81550011, 51172283, 81400557), Natural Science Foundation of Guangdong Province (2015A030313299) and Guangdong Provincial Medical Research Foundation (A2016360).<\/p>\n<h3 id=\"FPar2\" class=\"c-article__sub-heading\">Availability of data and materials<\/h3>\n<p>Databases\/repositories and materials is not applicable in this review.<\/p>\n<h3 id=\"FPar3\" class=\"c-article__sub-heading\">Authors\u2019 contributions<\/h3>\n<p>All authors contributed to the design and concept of this article. LO drafted the manuscript. BS and JL critically revised the manuscript. All authors read and approved the final manuscript.<\/p>\n<h3 id=\"FPar4\" class=\"c-article__sub-heading\">Competing interest<\/h3>\n<p>The authors declare that they have no competing interests.<\/p>\n<h3 id=\"FPar5\" class=\"c-article__sub-heading\">Consent for publication<\/h3>\n<p>Not applicable.<\/p>\n<h3 id=\"FPar6\" class=\"c-article__sub-heading\">Ethics approval and consent to participate<\/h3>\n<p>Not applicable.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section aria-labelledby=\"author-information\" data-title=\"Author information\">\n<div id=\"author-information-section\" class=\"c-article-section\">\n<h2 id=\"author-information\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Author information<\/h2>\n<div id=\"author-information-content\" class=\"c-article-section__content\">\n<h3 id=\"affiliations\" class=\"c-article__sub-heading\">Affiliations<\/h3>\n<ol class=\"c-article-author-affiliation__list\">\n<li id=\"Aff1\">\n<p class=\"c-article-author-affiliation__address\">Nanfang Hospital, Southern Medical University, Guangzhou, 510515, China<\/p>\n<p class=\"c-article-author-affiliation__authors-list\">Bin Song,\u00a0Huimin Liang,\u00a0Jia Liu,\u00a0Xiaoli Feng\u00a0&amp;\u00a0Longquan Shao<\/p>\n<\/li>\n<li id=\"Aff2\">\n<p class=\"c-article-author-affiliation__address\">The First Affiliated Hospital of Jinan University, Guangzhou, China<\/p>\n<p class=\"c-article-author-affiliation__authors-list\">Lingling Ou\u00a0&amp;\u00a0Ting Sun<\/p>\n<\/li>\n<li id=\"Aff3\">\n<p class=\"c-article-author-affiliation__address\">The General Hospital of People\u2019s Liberation Army, Beijing, China<\/p>\n<p class=\"c-article-author-affiliation__authors-list\">Bin Deng<\/p>\n<\/li>\n<\/ol>\n<h3 id=\"corresponding-author\" class=\"c-article__sub-heading\">Corresponding author<\/h3>\n<p id=\"corresponding-author-list\">Correspondence to <a id=\"corresp-c1\" href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\/email\/correspondent\/c1\/new\" rel=\"nofollow\">Longquan Shao<\/a>.<\/p>\n<p>___<br \/>\n<a href=\"https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y\">https:\/\/particleandfibretoxicology.biomedcentral.com\/articles\/10.1186\/s12989-016-0168-y<\/a><\/p>\n<\/div>\n<\/div>\n<\/section>\n","protected":false},"excerpt":{"rendered":"","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[1],"tags":[],"class_list":["post-72887","post","type-post","status-publish","format-standard","hentry","category-uncategorized"],"_links":{"self":[{"href":"http:\/\/stateofthenation.co\/index.php?rest_route=\/wp\/v2\/posts\/72887","targetHints":{"allow":["GET"]}}],"collection":[{"href":"http:\/\/stateofthenation.co\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"http:\/\/stateofthenation.co\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"http:\/\/stateofthenation.co\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"http:\/\/stateofthenation.co\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=72887"}],"version-history":[{"count":0,"href":"http:\/\/stateofthenation.co\/index.php?rest_route=\/wp\/v2\/posts\/72887\/revisions"}],"wp:attachment":[{"href":"http:\/\/stateofthenation.co\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=72887"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"http:\/\/stateofthenation.co\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=72887"},{"taxonomy":"post_tag","embeddable":true,"href":"http:\/\/stateofthenation.co\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=72887"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}