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首页> 外文期刊>Mutation Research: International Journal on Mutagenesis, Chromosome Breakage and Related Subjects >Structure alerts for carcinogenicity, and the Salmonella assay system: a novel insight through the chemical relational databases technology.
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Structure alerts for carcinogenicity, and the Salmonella assay system: a novel insight through the chemical relational databases technology.

机译:具有致癌性的结构警报和沙门氏菌测定系统:通过化学关系数据库技术获得的新颖见解。

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摘要

In the past decades, chemical carcinogenicity has been the object of mechanistic studies that have been translated into valuable experimental (e.g., the Salmonella assays system) and theoretical (e.g., compilations of structure alerts for chemical carcinogenicity) models. These findings remain the basis of the science and regulation of mutagens and carcinogens. Recent advances in the organization and treatment of large databases consisting of both biological and chemical information nowadays allows for a much easier and more refined view of data. This paper reviews recent analyses on the predictive performance of various lists of structure alerts, including a new compilation of alerts that combines previous work in an optimized form for computer implementation. The revised compilation is part of the Toxtree 1.50 software (freely available from the European Chemicals Bureau website). The use of structural alerts for the chemical biological profiling of a large database of Salmonella mutagenicity resultsis also reported. Together with being a repository of the science on the chemical biological interactions at the basis of chemical carcinogenicity, the SAs have a crucial role in practical applications for risk assessment, for: (a) description of sets of chemicals; (b) preliminary hazard characterization; (c) formation of categories for e.g., regulatory purposes; (d) generation of subsets of congeneric chemicals to be analyzed subsequently with QSAR methods; (e) priority setting. An important aspect of SAs as predictive toxicity tools is that they derive directly from mechanistic knowledge. The crucial role of mechanistic knowledge in the process of applying (Q)SAR considerations to risk assessment should be strongly emphasized. Mechanistic knowledge provides a ground for interaction and dialogue between model developers, toxicologists and regulators, and permits the integration of the (Q)SAR results into a wider regulatory framework, where different types of evidence and data concur or complement each other as a basis for making decisions and taking actions.
机译:在过去的几十年中,化学致癌性一直是机械研究的对象,已被转化为有价值的实验模型(例如沙门氏菌测定系统)和理论模型(例如化学致癌性的结构警报的汇编)模型。这些发现仍然是诱变剂和致癌物科学和调控的基础。如今,在组织和处理包含生物和化学信息的大型数据库方面的最新进展使得对数据的查看更加轻松和完善。本文回顾了有关各种结构警报列表的预测性能的最新分析,包括新的警报汇编,该汇编以优化的形式结合了以前的工作以用于计算机实施。修订后的版本是Toxtree 1.50软件的一部分(可从欧洲化学局网站免费获得)。还报道了使用结构警报对沙门氏菌致突变性结果的大型数据库进行化学生物学分析。 SA不仅是基于化学致癌性的化学生物学相互作用的科学资料库,而且在风险评估的实际应用中也起着至关重要的作用,用于:(a)描述各种化学品; (b)初步危害特征; (c)出于监管目的而形成类别; (d)产生同类化学子集,随后将用QSAR方法进行分析; (e)优先级设定。作为预测毒性工具的SA的重要方面是它们直接来自机械知识。应特别强调机械知识在将(Q)SAR考虑因素应用于风险评估的过程中的关键作用。机械知识为模型开发人员,毒理学家和监管者之间的互动和对话提供了基础,并允许将(Q)SAR结果整合到更广泛的监管框架中,在该框架中,不同类型的证据和数据相互认同或相互补充,以此为基础做出决定并采取行动。

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