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Current Knowledge on the Use of Computational Toxicology in Hazard Assessment of Metallic Engineered Nanomaterials

机译:在金属工程纳米材料的危害评估中使用计算毒理学的最新知识

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摘要

As listed by the European Chemicals Agency, the three elements in evaluating the hazards of engineered nanomaterials (ENMs) include the integration and evaluation of toxicity data, categorization and labeling of ENMs, and derivation of hazard threshold levels for human health and the environment. Assessing the hazards of ENMs solely based on laboratory tests is time-consuming, resource intensive, and constrained by ethical considerations. The adoption of computational toxicology into this task has recently become a priority. Alternative approaches such as (quantitative) structure–activity relationships ((Q)SAR) and read-across are of significant help in predicting nanotoxicity and filling data gaps, and in classifying the hazards of ENMs to individual species. Thereupon, the species sensitivity distribution (SSD) approach is able to serve the establishment of ENM hazard thresholds sufficiently protecting the ecosystem. This article critically reviews the current knowledge on the development of in silico models in predicting and classifying the hazard of metallic ENMs, and the development of SSDs for metallic ENMs. Further discussion includes the significance of well-curated experimental datasets and the interpretation of toxicity mechanisms of metallic ENMs based on reported models. An outlook is also given on future directions of research in this frontier.
机译:正如欧洲化学品管理局列出的那样,评估工程纳米材料(ENM)危害的三个要素包括毒性数据的集成和评估,ENM的分类和标签以及对人体健康和环境的危害阈值水平的推导。仅基于实验室测试来评估ENM的危害是耗时的,资源密集的,并且受到道德考虑的限制。最近,将计算毒理学应用于此任务已成为当务之急。 (定量)结构-活性关系((Q)SAR)和交叉阅读等替代方法对于预测纳米毒性和填补数据空白,以及对ENM对单个物种的危害进行分类具有重大帮助。因此,物种敏感度分布(SSD)方法能够为建立足以保护生态系统的ENM危害阈值提供服务。本文批判性地回顾了关于在预测和分类金属ENM的危害时计算机模型的开发方面的当前知识,以及用于金属ENM的SSD的开发。进一步的讨论包括精心策划的实验数据集的重要性以及基于报告的模型对金属ENM毒性机理的解释。展望了该领域的未来研究方向。

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