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Framing the nano-biointeractions by proteomics

机译:通过蛋白质组学构建纳米生物相互作用

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Knowledge of the molecular mechanisms underlying the interactions between nanomaterials and living systems is fundamental for providing more effective products for nanomedicine and drug delivery. Controlling the response of cells/bacteria (such as activation of inflammatory processes or apoptosisecrosis in tumor cells or pathogenic bacteria) by tuning specific properties of the nanomaterials is ultimately the challenging goal. Notably, this may also provide crucial information in the assessment of any toxic risks induced by nanoparticles on humans. However, in studying the nano-biointeractions, it is imperative to take into account the dynamic evolutions of nanoparticles in the biological environments (in terms of protein corona formation, size and charge changes) in synergy with the dynamic events occurring in cells, including signal transduction, metabolic processes, homeostasis and membrane trafficking. In this context, we discuss the impact of analytical technologies, especially in the field of proteomics, which can provide major insights into the processes affecting the NPs surface as well as the cells and bacteria functionalities. In particular, we show that a precise control of the chemical-physical characteristics of the interacting nanoparticles or nanostructures may impact the cells by inducing changes in the proteomic profiles with direct consequences on their viability.
机译:了解纳米材料与生命系统之间相互作用的分子机制是为纳米药物和药物输送提供更有效产品的基础。通过调节纳米材料的特定特性来控制细胞/细菌的响应(例如炎症过程的激活或肿瘤细胞或病原细菌中的凋亡/坏死的激活)最终是具有挑战性的目标。值得注意的是,这也可能为评估纳米颗粒对人体造成的任何毒性风险提供重要信息。但是,在研究纳米生物相互作用时,必须考虑纳米颗粒在生物环境中的动态演变(就蛋白质电晕的形成,大小和电荷变化而言)与细胞中发生的动态事件(包括信号)协同作用转导,代谢过程,体内稳态和膜运输。在这种情况下,我们讨论了分析技术的影响,特别是在蛋白质组学领域,可以为影响NPs表面的过程以及细胞和细菌功能提供重要见解。特别地,我们表明相互作用的纳米颗粒或纳米结构的化学物理特征的精确控制可能会通过诱导蛋白质组学概况的变化而对细胞产生影响,从而直接影响其生存能力。

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