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氧化锌纳米颗粒的氧化应激介导的遗传毒性作用于…… (原文似乎不完整)

Oxidative stress-mediated genotoxic effect of zinc oxide nanoparticles on .

作者信息

Singh Ragini, Cheng Shuang, Singh Sanjay

机构信息

1School of Agriculture Science, Liaocheng University, Liaocheng, Shandong China.

2Division of Biological and Life Sciences, Ahmedabad University, Central campus, Navrangpura, Ahmedabad, Gujarat 380009 India.

出版信息

3 Biotech. 2020 Feb;10(2):66. doi: 10.1007/s13205-020-2054-4. Epub 2020 Jan 24.

Abstract

Extensive use of nanomaterials in consumer products has invoked the concerns about interactions of nanoparticles with living organisms (including microorganisms). Zinc oxide nanoparticles (ZnO NPs) are well known for their antibacterial effect due to reactive oxygen species (ROS) generation. Therefore, their release into the environment is expected to raise major concern towards ecotoxicity. In the present study, we have studied the toxic effect of ZnO NPs on , which is well known to show extraordinary resistant from the damaging effects of radiation. Result showed that ZnO NPs are significantly internalized into the bacterial cells and induce concentration-dependent toxicity with membrane damage. Genotoxicity studies revealed that ZnO exposure induces significant DNA damage to bacterial cells. All the observations evidenced that ZnO NPs induce significant ROS generation, protein oxidation and DNA damage with concomitant thiol depletion. Further, gene expression analysis showed that several DNA repair genes and metabolic pathway-related genes are downregulated upon ZnO NP exposure, with simultaneous increase in the expression of DNA damage response genes. Thus, the present study on toxicity of ZnO NPs on a model organism, inflicts the possible mechanism behind ZnO NP-mediated toxic effects on various other microbial organisms.

摘要

纳米材料在消费品中的广泛应用引发了人们对纳米颗粒与生物(包括微生物)相互作用的担忧。氧化锌纳米颗粒(ZnO NPs)因其能产生活性氧(ROS)而具有抗菌作用,广为人知。因此,它们释放到环境中预计会引发对生态毒性的重大关注。在本研究中,我们研究了ZnO NPs对 的毒性作用, 以对辐射的破坏作用具有非凡抗性而闻名。结果表明,ZnO NPs能显著内化到细菌细胞中,并诱导浓度依赖性毒性以及膜损伤。遗传毒性研究表明,暴露于ZnO会对细菌细胞造成显著的DNA损伤。所有观察结果都证明,ZnO NPs会诱导显著的ROS生成、蛋白质氧化和DNA损伤,并伴随硫醇消耗。此外,基因表达分析表明,暴露于ZnO NPs后,几个DNA修复基因和代谢途径相关基因的表达下调,同时DNA损伤反应基因的表达增加。因此,本研究关于ZnO NPs对模式生物 的毒性,揭示了ZnO NPs对其他各种微生物产生毒性作用背后的可能机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5b7/6980014/8914151dc588/13205_2020_2054_Fig1_HTML.jpg

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