Challenges of Biological Complexity in the Study of Nanotoxicology.

IF 3.7 3区 医学 Q2 CHEMISTRY, MEDICINAL
Chemical Research in Toxicology Pub Date : 2025-01-20 Epub Date: 2025-01-07 DOI:10.1021/acs.chemrestox.4c00220
Andrew B Northwick, Erin E Carlson
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Abstract

The scale of nanoparticle use in consumer goods has grown exponentially over several decades owing to the unique properties of materials in this size range. At the same time, well-defined end of life cycle disposal strategies have not been developed for most materials, meaning that we are approaching the potential for a new ecological disaster with the release of millions of metric tons of nanoparticles into the waste stream. The field of nanotoxicology has grown to meet the challenge of investigating the potential hazards of these materials and has already identified toxicity mechanisms that affect multiple tropes of life. However, there are stipulations on how applicable many of these results are to real world applications. These limitations largely arise from the complex network of variables that must be considered during these investigations. Herein, we focus on the challenges posed by the transformations that nanoparticles undergo when they are introduced into a biological environment. For example, biomolecules, such as proteins, rapidly coat nanoparticles with a shell, called a corona, that can modulate the toxicity of the core materials and/or aid its internalization into cells. As such, unlike in the evaluation of small molecule toxicity, one cannot assume that they know the composition of the nanoparticle-biomolecule species at any given time. This additional layer of complication, as well as the noncovalent nature of the corona, have made it difficult to identify consistent toxicity trends. In this Perspective, we highlight current analysis strategies and the difficulties in studying nanotoxicity, recent advances to aid in these studies, and efforts to reduce nanotoxicity and outline remaining challenges.

生物复杂性在纳米毒理学研究中的挑战。
在过去的几十年里,由于纳米材料在这个尺寸范围内的独特特性,纳米颗粒在消费品中的使用规模呈指数级增长。与此同时,对于大多数材料,还没有制定出明确的生命周期结束处理策略,这意味着我们正在接近一场新的生态灾难的可能性,数百万公吨的纳米颗粒被释放到废物流中。纳米毒理学领域已经发展起来,以应对调查这些材料潜在危害的挑战,并且已经确定了影响多种生命形态的毒性机制。然而,对于这些结果在实际应用中的适用性有一些规定。这些限制很大程度上源于这些调查中必须考虑的复杂的变量网络。在这里,我们将重点放在纳米粒子被引入生物环境时所经历的转化所带来的挑战。例如,生物分子,如蛋白质,迅速地给纳米粒子包裹上一层叫做电晕的外壳,这可以调节核心材料的毒性和/或帮助其内化到细胞中。因此,与小分子毒性的评估不同,人们不能假设他们知道纳米粒子-生物分子物种在任何给定时间的组成。这一额外的并发症,以及冠状病毒的非共价性质,使得难以确定一致的毒性趋势。在这一观点中,我们强调当前的分析策略和研究纳米毒性的困难,最近的进展,以帮助这些研究,努力减少纳米毒性和概述仍然存在的挑战。
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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来源期刊
CiteScore
7.90
自引率
7.30%
发文量
215
审稿时长
3.5 months
期刊介绍: Chemical Research in Toxicology publishes Articles, Rapid Reports, Chemical Profiles, Reviews, Perspectives, Letters to the Editor, and ToxWatch on a wide range of topics in Toxicology that inform a chemical and molecular understanding and capacity to predict biological outcomes on the basis of structures and processes. The overarching goal of activities reported in the Journal are to provide knowledge and innovative approaches needed to promote intelligent solutions for human safety and ecosystem preservation. The journal emphasizes insight concerning mechanisms of toxicity over phenomenological observations. It upholds rigorous chemical, physical and mathematical standards for characterization and application of modern techniques.
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