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实验与计算纳米毒理学——纳米材料危害评估的互补方法

Experimental and Computational Nanotoxicology-Complementary Approaches for Nanomaterial Hazard Assessment.

作者信息

Forest Valérie

机构信息

Mines Saint-Etienne, Univ Lyon, Univ Jean Monnet, Etablissement Français du Sang, INSERM, U1059 Sainbiose, Centre CIS, F-42023 Saint-Etienne, France.

出版信息

Nanomaterials (Basel). 2022 Apr 14;12(8):1346. doi: 10.3390/nano12081346.

Abstract

The growing development and applications of nanomaterials lead to an increasing release of these materials in the environment. The adverse effects they may elicit on ecosystems or human health are not always fully characterized. Such potential toxicity must be carefully assessed with the underlying mechanisms elucidated. To that purpose, different approaches can be used. First, experimental toxicology consisting of conducting in vitro or in vivo experiments (including clinical studies) can be used to evaluate the nanomaterial hazard. It can rely on variable models (more or less complex), allowing the investigation of different biological endpoints. The respective advantages and limitations of in vitro and in vivo models are discussed as well as some issues associated with experimental nanotoxicology. Perspectives of future developments in the field are also proposed. Second, computational nanotoxicology, i.e., in silico approaches, can be used to predict nanomaterial toxicity. In this context, we describe the general principles, advantages, and limitations especially of quantitative structure-activity relationship (QSAR) models and grouping/read-across approaches. The aim of this review is to provide an overview of these different approaches based on examples and highlight their complementarity.

摘要

纳米材料不断发展并得到广泛应用,导致这些材料在环境中的释放量日益增加。它们可能对生态系统或人类健康产生的不利影响并不总是得到充分表征。必须仔细评估这种潜在毒性,并阐明其潜在机制。为此,可以采用不同的方法。首先,实验毒理学包括进行体外或体内实验(包括临床研究),可用于评估纳米材料的危害。它可以依赖于不同的模型(复杂程度各异),从而能够研究不同的生物学终点。本文讨论了体外和体内模型各自的优缺点以及与实验纳米毒理学相关的一些问题。还提出了该领域未来发展的前景。其次,计算纳米毒理学,即计算机模拟方法,可用于预测纳米材料的毒性。在此背景下,我们描述了一般原则、优点,尤其是定量构效关系(QSAR)模型和分组/类推方法的局限性。本综述的目的是通过实例对这些不同方法进行概述,并强调它们的互补性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e535/9031966/48d391187dcf/nanomaterials-12-01346-g001.jpg

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