In Vivo Effects of Silver Nanoparticles on Development, Behavior, and Mitochondrial Function are Altered by Genetic Defects in Mitochondrial Dynamics.

Pub Date : 2022-01-04 DOI:10.1021/acs.est.1c05915.s001
D. F. Mello, Laura L. Maurer, Ian T. Ryde, Dong Hoon Songr, Stella M. Marinakos, Chuanjia Jiang, M. Wiesner, Heileen Hsu-Kim, Joel N. Meyer
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引用次数: 7

Abstract

Silver nanoparticles (AgNPs) are extensively used in consumer products and biomedical applications, thus guaranteeing both environmental and human exposures. Despite extensive research addressing AgNP safety, there are still major knowledge gaps regarding AgNP toxicity mechanisms, particularly in whole organisms. Mitochondrial dysfunction is frequently described as an important cytotoxicity mechanism for AgNPs; however, it is still unclear if mitochondria are the direct targets of AgNPs. To test this, we exposed the nematodeCaenorhabditis elegans to sublethal concentrations of AgNPs and assessed specific mitochondrial parameters as well as organismal-level endpoints that are highly reliant on mitochondrial function, such as development and chemotaxis behavior. All AgNPs tested significantly delayed nematode development, disrupted mitochondrial bioenergetics, and blocked chemotaxis. However, silver was not preferentially accumulated in mitochondria, indicating that these effects are likely not due to direct mitochondria-AgNP interactions. Mutant nematodes with deficiencies in mitochondrial dynamics displayed both greater and decreased susceptibility to AgNPs compared to wild-type nematodes, which was dependent on the assay and AgNP type. Our study suggests that AgNPs indirectly promote mitochondrial dysfunction, leading to adverse outcomes at the organismal level, and reveals a role of gene-environment interactions in the susceptibility to AgNPs. Finally, we propose a novel hypothetical adverse outcome pathway for AgNP effects to guide future research.
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体内银纳米颗粒对线粒体发育、行为和功能的影响是由线粒体动力学中的遗传缺陷改变的。
银纳米颗粒(AgNPs)广泛用于消费品和生物医学应用,从而保证了环境和人类暴露。尽管针对AgNP安全性进行了广泛的研究,但关于AgNP毒性机制,特别是在整个生物体中,仍然存在重大的知识空白。线粒体功能障碍经常被描述为AgNPs的重要细胞毒性机制;然而,目前尚不清楚线粒体是否是AgNPs的直接靶点。为了验证这一点,我们将秀丽隐杆线虫暴露于亚致死浓度的AgNPs中,并评估了特定的线粒体参数以及高度依赖线粒体功能的生物体水平终点,如发育和趋化行为。所有AgNPs测试显著延迟线虫发育,扰乱线粒体生物能量,并阻断趋化性。然而,银并没有优先在线粒体中积累,这表明这些影响可能不是由于线粒体- agnp的直接相互作用。与野生型线虫相比,线粒体动力学缺陷的突变线虫对AgNP的易感性更高或更低,这取决于检测和AgNP类型。我们的研究表明,AgNPs间接促进线粒体功能障碍,导致机体水平的不良后果,并揭示了基因-环境相互作用在AgNPs易感性中的作用。最后,我们提出了一种新的假设AgNP效应的不良后果途径,以指导未来的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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