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预测一组取代酚类化合物对雌激素受体的激活作用:一种集成的测试和评估案例研究方法。

Predicting estrogen receptor activation by a group of substituted phenols: An integrated approach to testing and assessment case study.

出版信息

Regul Toxicol Pharmacol. 2019 Aug;106:278-291. doi: 10.1016/j.yrtph.2019.05.017. Epub 2019 May 20.

Abstract

Traditional approaches for chemical risk assessment cannot keep pace with the number of substances requiring assessment. Thus, in a global effort to expedite and modernize chemical risk assessment, New Approach Methodologies (NAMs) are being explored and developed. Included in this effort is the OECD Integrated Approaches for Testing and Assessment (IATA) program, which provides a forum for OECD member countries to develop and present case studies illustrating the application of NAM in various risk assessment contexts. Here, we present an IATA case study for the prediction of estrogenic potential of three target phenols: 4-tert-butylphenol, 2,4-di-tert-butylphenol and octabenzone. Key features of this IATA include the use of two computational approaches for analogue selection for read-across, data collected from traditional and NAM sources, and a workflow to generate predictions regarding the targets' ability to bind the estrogen receptor (ER). Endocrine disruption can occur when a chemical substance mimics the activity of natural estrogen by binding to the ER and, if potency and exposure are sufficient, alters the function of the endocrine system to cause adverse effects. The data indicated that of the three target substances that were considered herein, 4-tert-butylphenol is a potential endocrine disruptor. Further, this IATA illustrates that the NAM approach explored is health protective when compared to in vivo endpoints traditionally used for human health risk assessment.

摘要

传统的化学风险评估方法无法跟上需要评估的物质数量。因此,为了加快和现代化化学风险评估,正在探索和开发新方法方法 (NAM)。这包括经合组织综合测试和评估方法 (IATA) 计划,该计划为经合组织成员国提供了一个论坛,以开发和展示案例研究,说明 NAM 在各种风险评估情况下的应用。在这里,我们展示了一个 IATA 案例研究,用于预测三种目标酚类物质的雌激素潜力:4-叔丁基苯酚、2,4-二叔丁基苯酚和奥克他苯酮。该 IATA 的主要特点包括使用两种计算方法来选择用于类推的类似物,从传统和 NAM 来源收集的数据,以及生成关于目标物质结合雌激素受体 (ER) 的能力的预测的工作流程。当一种化学物质通过与 ER 结合模拟天然雌激素的活性,并且如果效力和暴露足够,就会发生内分泌干扰,从而改变内分泌系统的功能并导致不良影响。数据表明,在所考虑的三种目标物质中,4-叔丁基苯酚是一种潜在的内分泌干扰物。此外,该 IATA 表明,与传统上用于人类健康风险评估的体内终点相比,所探索的 NAM 方法具有健康保护作用。

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