CICECO - Aveiro Institute of Materials, Department of Chemistry , University of Aveiro , 3810-193 Aveiro , Portugal.
Department of Biology, Faculty of Sciences , University of Porto , 4169-007 Porto , Portugal.
J Proteome Res. 2018 Apr 6;17(4):1636-1646. doi: 10.1021/acs.jproteome.7b00905. Epub 2018 Mar 9.
The expansion of biomedical and therapeutic applications of silver nanoparticles (AgNPs) raises the need to further understand their biological effects on human cells. In this work, NMR metabolomics has been applied to reveal the metabolic effects of AgNPs toward human hepatoma (HepG2) cells, which are relevant with respect to nanoparticle accumulation and detoxification. Cellular responses to widely disseminated citrate-coated AgNPs (Cit30) and to emergent biogenic AgNPs prepared using an aqueous plant extract as reducing and stabilizing agent (GS30) have been compared with a view to assess the influence of nanoparticle coating on the metabolic effects produced. Subtoxic concentrations (IC and IC) of both nanoparticle types caused profound changes in the cellular metabolome, suggesting adaptations in energy production processes (glucose metabolism and the phosphocreatine system), antioxidant defenses, protein degradation and lipid metabolism. These signatures were proposed to reflect mainly metabolism-mediated protective mechanisms and were found to be largely common to Cit30 and GS30 AgNPs, although differences in the magnitude of response, not captured by conventional cytotoxicity assessment, were detected. Overall, this study highlights the value of NMR metabolomics for revealing subtoxic biological effects and helping to understand cell-nanomaterial interactions.
银纳米粒子(AgNPs)在生物医学和治疗应用方面的扩展,使得人们需要进一步了解它们对人类细胞的生物学影响。在这项工作中,NMR 代谢组学被应用于揭示 AgNPs 对人肝癌(HepG2)细胞的代谢影响,这与纳米颗粒的积累和解毒有关。比较了广泛传播的柠檬酸涂层 AgNPs(Cit30)和使用水植物提取物作为还原和稳定剂制备的新兴生物 AgNPs(GS30)对细胞的反应,以评估纳米颗粒涂层对产生的代谢影响的影响。两种纳米颗粒类型的亚毒性浓度(IC 和 IC)导致细胞代谢组发生深刻变化,表明能量产生过程(葡萄糖代谢和磷酸肌酸系统)、抗氧化防御、蛋白质降解和脂质代谢的适应。这些特征被认为主要反映了代谢介导的保护机制,并且被发现与 Cit30 和 GS30 AgNPs 基本相同,尽管在常规细胞毒性评估中未捕捉到的反应幅度的差异。总的来说,这项研究强调了 NMR 代谢组学在揭示亚毒性生物学效应和帮助理解细胞-纳米材料相互作用方面的价值。