Genotoxicity investigations on nanomaterials

被引:0
作者
Franz Oesch
Robert Landsiedel
机构
[1] University of Mainz,Institute of Toxicology
[2] BASF SE,Department of Product Safety
来源
Archives of Toxicology | 2012年 / 86卷
关键词
Nanomaterials; Particles, mutagenicity, genotoxicity; DNA damage, test methods;
D O I
暂无
中图分类号
学科分类号
摘要
This review is based on the lecture presented at the April 2010 nanomaterials safety assessment Postsatellite to the 2009 EUROTOX Meeting and summarizes genotoxicity investigations on nanomaterials published in the open scientific literature (up to 2008). Special attention is paid to the relationship between particle size and positive versus negative outcome, as well as the dependence of the outcome on the test used. Salient conclusions and outstanding recommendations emerging from the information summarized in this review are as follows: recognize that nanomaterials are not all the same; therefore know and document what nanomaterial has been tested and in what form; take nanomaterials specific properties into account; in order to make your results comparable with those of others and on other nanomaterials: use or at least include in your studies standardized methods; use in vivo studies to put in vitro results into perspective; take uptake and distribution of the nanomaterial into account; and in order to become able to make extrapolations to risk for human: learn about the mechanism of nanomaterials genotoxic effects. Past experience with standard non-nanosubstances already had shown that mechanisms of genotoxic effects can be complex and their elucidation can be demanding, while there often is an immediate need to assess the genotoxic hazard. Thus, a practical and pragmatic approach to genotoxicity investigations of novel nanomaterials is the use of a battery of standard genotoxicity testing methods covering a wide range of mechanisms. Application of these standard methods to nanomaterials demands, however, adaptations, and the interpretation of results from the genotoxicity testing of nanomaterials needs additional considerations exceeding those used for standard size materials.
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页码:985 / 994
页数:9
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[1]  
Auffan M(2006)In vitro interactions between DMSA-coated maghemite nanoparticles and human fibroblasts: a physicochemical and cyto-genotoxical study Environ Sci Technol 40 4367-4373
[2]  
Decome L(2005)Ultrafine particulate matter and high-level benzene urban air pollution in relation to oxidative DNA damage Carcinogenesis 2 613-620
[3]  
Rose J(2006)Characterizing the impact of preparation method on fullerene cluster structure and chemistry Langmuir 22 3878-3885
[4]  
Orsiere T(2007)Exposure to ultrafine particles from ambient air and oxidative stress–induced DNA damage Environ Health Perspect 115 1177-1182
[5]  
Demeo M(2007)Understanding the nanoparticle-protein corona using methods to quantify exchange rates and affinities of proteins for nanoparticles Proc Natl Acad Sci USA 104 2050-2055
[6]  
Briois V(2007)Electrochemical sensing DNA damage with nano-titanium dioxide and repair with a medicinal herb species resveratrol J Biotechnol 127 653-656
[7]  
Chaneac C(2006)Stable colloidal dispersions of C60 fullerenes in water: evidence for genotoxicity Environ Sci Technol 40 7394-7401
[8]  
Olivi L(2004)An introduction to the short-term toxicology of respirable industrial fibres Mutat Res 553 5-9
[9]  
Berge–Lefranc JL(1997)Effect of particle exposure and particle-elicited inflammatory cells on mutation in rat alveolar epithelial cells Carcinogenesis 18 423-430
[10]  
Botta A(2006)Clastogenicity, photo-clastogenicity or pseudo-photo-clastogenicity: genotoxic effects of zinc oxide in the dark, in pre-irradiated or simultaneously irradiated Chinese hamster ovary cells Mutat Res 607 215-224