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Metabolomics of silver nanoparticles toxicity in HaCaT cells: structure-activity relationships and role of ionic silver and oxidative stress

机译:HaCaT细胞中银纳米颗粒毒性的代谢组学:结构-活性关系以及离子银和氧化应激的作用

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The widespread use of silver nanoparticles (AgNPs) is accompanied by a growing concern regarding their potential risks to human health, thus calling for an increased understanding of their biological effects. The aim of this work was to systematically study the extent to which changes in cellular metabolism were dependent on the properties of AgNPs, using NMR metabolomics. Human skin keratinocytes (HaCaT cells) were exposed to citrate-coated AgNPs of 10, 30 or 60nm diameter and to 30nm AgNPs coated either with citrate (CIT), polyethylene glycol (PEG) or bovine serum albumin (BSA), to assess the influence of NP size and surface chemistry. Overall, CIT-coated 60nm and PEG-coated 30nm AgNPs had the least impact on cell viability and metabolism. The role of ionic silver and reactive oxygen species (ROS)-mediated effects was also studied, in comparison to CIT-coated 30nm particles. At concentrations causing an equivalent decrease in cell viability, Ag(+)ions produced a change in the metabolic profile that was remarkably similar to that seen for AgNPs, the main difference being the lesser impact on the Krebs cycle and energy metabolism. Finally, this study newly reported that while down-regulated glycolysis and disruption of energy production were common to AgNPs and H2O2, the impact on some metabolic pathways (GSH synthesis, glutaminolysis and the Krebs cycle) was independent of ROS-mediated mechanisms. In conclusion, this study shows the ability of NMR metabolomics to define subtle biochemical changes induced by AgNPs and demonstrates the potential of this approach for rapid, untargeted screening of pre-clinical toxicity of nanomaterials in general.
机译:银纳米颗粒(AgNPs)的广泛使用伴随着对它们对人类健康的潜在风险的日益关注,因此需要对它们的生物学效应有更多的了解。这项工作的目的是使用NMR代谢组学系统地研究细胞代谢变化取决于AgNPs特性的程度。将人皮肤角质形成细胞(HaCaT细胞)暴露于直径分别为10、30或60nm的柠檬酸盐包被的AgNPs以及涂覆有柠檬酸盐(CIT),聚乙二醇(PEG)或牛血清白蛋白(BSA)的30nm AgNPs,以评估其影响NP大小和表面化学。总体而言,CIT涂层60nm和PEG涂层30nm AgNP对细胞活力和代谢的影响最小。与CIT涂层的30nm颗粒相比,还研究了离子银和活性氧(ROS)介导的作用。在导致细胞活力同等降低的浓度下,Ag(+)离子产生的代谢曲线变化与AgNPs极为相似,主要区别是对克雷布斯循环和能量代谢的影响较小。最后,这项研究最新报道,虽然下调的糖酵解和能量产生的破坏是AgNP和H2O2的常见现象,但对某些代谢途径(GSH合成,谷氨酰胺分解和Krebs循环)的影响与ROS介导的机制无关。总而言之,这项研究显示了NMR代谢组学确定由AgNPs引起的细微生化变化的能力,并证明了这种方法通常可以快速,无针对性地筛查纳米材料的临床前毒性。

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