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不良结局途径的语义特征描述。

Semantic characterization of adverse outcome pathways.

作者信息

Wang Rong-Lin

机构信息

Great Lakes Toxicology & Ecology Division, Center for Computational Toxicology & Exposure, U.S. Environmental Protection Agency, Cincinnati, OH, 45268, USA.

出版信息

Aquat Toxicol. 2020 May;222:105478. doi: 10.1016/j.aquatox.2020.105478. Epub 2020 Mar 30.

Abstract

This study was undertaken to systematically assess the utilities and performance of ontology-based semantic analysis in adverse outcome pathway (AOP) research. With an increasing number of AOPs developed by scientific domain experts to organize toxicity information and facilitate chemical risk assessment, there is a pressing need for objective approaches to evaluate the biological coherence and quality of these AOPs. Powered by ontologies covering a wide range of biological domains, abundant phenotypic data annotated ontologically, and some sophisticated knowledge computing tools, semantic analysis has great potential in this area of application. With the events in the AOP-Wiki first annotated into logical definitions and then grouped into phenotypic profiles by individual AOPs, the coherence and quality of AOPs were assessed at several levels: paired key event relationships (KER), all possible event pair combinations within AOPs, and the phenotypic profiles of AOPs, genes, biological pathways, human diseases, and selected chemicals. The semantic similarities were assessed at all these levels based on a unified cross-species vertebrate phenotype ontology encompassing the logical definitions of AOP events as well as many other domain ontologies. A substantial number of KERs and AOPs in the AOP-Wiki were found to be semantically coherent. These same coherent AOPs also mapped to many more genes, pathways, and diseases biologically aligned with the intended chain of events therein leading to their respective adverse outcomes. Significantly, these findings imply that semantic analysis should also have utilities in developing future AOPs by selecting candidate events from either the existing AOP-Wiki events or a broader collection of ontology terms semantically similar to the molecular initiating events or adverse outcomes of interest. In addition, semantic analysis enabled AOP networks to be constructed at the level of phenotypic profiles based on similarities, complementing those based on event sharing by bringing genes, pathways, diseases, and chemicals into the networks too-thus greatly expanding the biological scope and our understanding of AOPs.

摘要

本研究旨在系统评估基于本体的语义分析在不良结局途径(AOP)研究中的效用和性能。随着科学领域专家开发出越来越多的AOP来组织毒性信息并促进化学风险评估,迫切需要客观的方法来评估这些AOP的生物学连贯性和质量。借助涵盖广泛生物领域的本体、大量经过本体注释的表型数据以及一些复杂的知识计算工具,语义分析在这一应用领域具有巨大潜力。通过将AOP-Wiki中的事件首先注释为逻辑定义,然后按各个AOP分组为表型概况,在几个层面评估了AOP的连贯性和质量:配对关键事件关系(KER)、AOP内所有可能的事件对组合,以及AOP、基因、生物途径、人类疾病和选定化学物质的表型概况。基于一个统一的跨物种脊椎动物表型本体,涵盖AOP事件的逻辑定义以及许多其他领域本体,在所有这些层面评估了语义相似性。发现AOP-Wiki中的大量KER和AOP在语义上是连贯的。这些同样连贯的AOP在生物学上也映射到更多与其中预期事件链对齐并导致各自不良结局的基因、途径和疾病。重要的是,这些发现意味着语义分析在通过从现有AOP-Wiki事件或与感兴趣的分子起始事件或不良结局语义相似的更广泛本体术语集合中选择候选事件来开发未来AOP方面也应具有效用。此外,语义分析能够基于相似性在表型概况层面构建AOP网络,通过将基因、途径、疾病和化学物质也纳入网络来补充基于事件共享的网络,从而极大地扩展了生物学范围以及我们对AOP的理解。

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本文引用的文献

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Toxicology. 2019 Jan 15;412:89-100. doi: 10.1016/j.tox.2018.11.005. Epub 2018 Nov 20.
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Adverse outcome pathway networks I: Development and applications.不良结局路径网络 I:开发与应用。
Environ Toxicol Chem. 2018 Jun;37(6):1723-1733. doi: 10.1002/etc.4125. Epub 2018 May 7.
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