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长期暴露于低剂量钴纳米颗粒会诱导细胞转化,氧化损伤会增强这种转化。

Long-term exposures to low doses of cobalt nanoparticles induce cell transformation enhanced by oxidative damage.

作者信息

Annangi Balasubramanyam, Bach Jordi, Vales Gerard, Rubio Laura, Marcos Ricard, Hernández Alba

机构信息

Grup de Mutagènesi, Departament de Genètica i de Microbiologia, Facultat de Biociències, Universitat Autònoma de Barcelona , Bellaterra , Spain and.

出版信息

Nanotoxicology. 2015 Mar;9(2):138-47. doi: 10.3109/17435390.2014.900582. Epub 2014 Apr 9.

DOI:10.3109/17435390.2014.900582
PMID:24713074
Abstract

A weak aspect of the in vitro studies devoted to get information on the toxic, genotoxic and carcinogenic properties of nanomaterials is that they are usually conducted under acute-exposure and high-dose conditions. This makes difficult to extrapolate the results to human beings. To overcome this point, we have evaluated the cell transforming ability of cobalt nanoparticles (CoNPs) after long-term exposures (12 weeks) to sub-toxic doses (0.05 and 0.1 µg/mL). To get further information on whether CoNPs-induced oxidative DNA damage is relevant for CoNPs carcinogenesis, the cell lines selected for the study were the wild-type mouse embryonic fibroblast (MEF Ogg1(+/+)) and its isogenic Ogg1 knockout partner (MEF Ogg1(-)(/)(-)), unable to properly eliminate the 8-OH-dG lesions from DNA. Our initial short-term exposure experiments demonstrate that low doses of CoNPs are able to induce reactive oxygen species (ROS) and that MEF Ogg1(-)(/)(-) cells are more sensitive to CoNPs-induced acute toxicity and oxidative DNA damage. On the other hand, long-term exposures of MEF cells to sub-toxic doses of CoNPs were able to induce cell transformation, as indicated by the observed morphological cell changes, significant increases in the secretion of metalloproteinases (MMPs) and anchorage-independent cell growth ability, all cancer-like phenotypic hallmarks. Interestingly, such changes were significantly dependent on the cell line used, the Ogg1(-)(/)(-) cells being particularly sensitive. Altogether, the data presented here confirms the potential carcinogenic risk of CoNPs and points out the relevance of ROS and Ogg1 genetic background on CoNPs-associated effects.

摘要

致力于获取纳米材料毒性、遗传毒性和致癌特性信息的体外研究存在一个薄弱环节,即这些研究通常在急性暴露和高剂量条件下进行。这使得将结果外推至人类变得困难。为克服这一问题,我们评估了钴纳米颗粒(CoNP)在长期暴露(12周)于亚毒性剂量(0.05和0.1μg/mL)后的细胞转化能力。为进一步了解CoNP诱导的氧化性DNA损伤是否与CoNP致癌作用相关,本研究选择的细胞系为野生型小鼠胚胎成纤维细胞(MEF Ogg1(+/+))及其同基因Ogg1基因敲除细胞系(MEF Ogg1(-)(/)(-)),后者无法有效清除DNA中的8-羟基脱氧鸟苷(8-OH-dG)损伤。我们最初的短期暴露实验表明,低剂量的CoNP能够诱导活性氧(ROS)产生,且MEF Ogg1(-)(/)(-)细胞对CoNP诱导的急性毒性和氧化性DNA损伤更为敏感。另一方面,MEF细胞长期暴露于亚毒性剂量CoNP能够诱导细胞转化,表现为观察到的细胞形态变化、金属蛋白酶(MMP)分泌显著增加以及不依赖贴壁的细胞生长能力增强,这些均为癌症样表型特征。有趣的是,这些变化显著依赖于所用细胞系,Ogg1(-)(/)(-)细胞尤其敏感。总之,本文提供的数据证实了CoNP的潜在致癌风险,并指出了ROS和Ogg1基因背景在CoNP相关效应中的相关性。

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