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通过斑马鱼胚胎毒性试验,利用自动效应模式分析将化学物质分组为作用模式类别。

Grouping of chemicals into mode of action classes by automated effect pattern analysis using the zebrafish embryo toxicity test.

作者信息

Teixidó E, Kieβling T R, Klüver N, Scholz S

机构信息

Department of Bioanalytical Ecotoxicology, Helmholtz Centre for Environmental Research-UFZ, Permoserstraβe 15, 04318, Leipzig, Germany.

GRET-Toxicology Unit, Department of Pharmacology, Toxicology and Therapeutic Chemistry, Faculty of Pharmacy and Food Sciences, University of Barcelona, 08028, Barcelona, Spain.

出版信息

Arch Toxicol. 2022 May;96(5):1353-1369. doi: 10.1007/s00204-022-03253-x. Epub 2022 Mar 7.

Abstract

A central element of high throughput screens for chemical effect assessment using zebrafish is the assessment and quantification of phenotypic changes. By application of an automated and more unbiased analysis of these changes using image analysis, patterns of phenotypes may be associated with the mode of action (MoA) of the exposure chemical. The aim of our study was to explore to what extent compounds can be grouped according to their anticipated toxicological or pharmacological mode of action using an automated quantitative multi-endpoint zebrafish test. Chemical-response signatures for 30 endpoints, covering phenotypic and functional features, were generated for 25 chemicals assigned to 8 broad MoA classes. Unsupervised clustering of the profiling data demonstrated that chemicals were partially grouped by their main MoA. Analysis with a supervised clustering technique such as a partial least squares discriminant analysis (PLS-DA) allowed to identify markers with a strong potential to discriminate between MoAs such as mandibular arch malformation observed for compounds interfering with retinoic acid signaling. The capacity for discriminating MoAs was also benchmarked to an available battery of in vitro toxicity data obtained from ToxCast library indicating a partially similar performance. Further, we discussed to which extent the collected dataset indicated indeed differences for compounds with presumably similar MoA or whether other factors such as toxicokinetic differences could have an important impact on the determined response patterns.

摘要

使用斑马鱼进行化学效应评估的高通量筛选的一个核心要素是对表型变化的评估和量化。通过使用图像分析对这些变化进行自动化且更无偏倚的分析,表型模式可能与暴露化学物质的作用模式(MoA)相关联。我们研究的目的是探索使用自动化定量多终点斑马鱼试验,化合物能够在多大程度上根据其预期的毒理学或药理学作用模式进行分组。针对分配到8大类作用模式的25种化学物质,生成了涵盖表型和功能特征的30个终点的化学响应特征。对分析数据进行无监督聚类表明,化学物质部分地按照其主要作用模式进行了分组。使用诸如偏最小二乘判别分析(PLS - DA)等监督聚类技术进行分析,能够识别出具有很强潜力区分不同作用模式的标志物,例如观察到干扰视黄酸信号传导的化合物会出现下颌弓畸形。区分作用模式的能力也与从ToxCast库获得的一组可用体外毒性数据进行了基准比较,结果表明性能部分相似。此外,我们讨论了所收集的数据集在多大程度上确实表明了具有推测相似作用模式的化合物之间的差异,或者其他因素(如毒代动力学差异)是否可能对所确定的响应模式产生重要影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d58b/9013687/ab5ef99784d1/204_2022_3253_Fig1_HTML.jpg

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