ibacon, Roßdorf, Germany.
Marine Science Institute, University of California, Santa Barbara, California, USA.
Environ Toxicol Chem. 2024 Nov;43(11):2409-2421. doi: 10.1002/etc.5975. Epub 2024 Sep 2.
Toxicokinetic-toxicodynamic (TKTD) modeling has received increasing attention in terms of the regulatory environmental risk assessment of chemicals. This type of mechanistic model can integrate all available data from individual-level bioassays into a single framework and enable refined risk assessments by extrapolating from laboratory results to time-variable exposure scenarios, based, for instance, on surface water exposure modeling (e.g., FOCUS). Dynamic energy budget (DEB) models coupled with TKTD modules (DEB-TKTD) constitute the leading approach to assess and predict sublethal effects of chemicals on individual organisms. However, thorough case studies are rare. We provide a state-of-the-art example with the standard aquatic test species Ceriodaphnia dubia and the fungicide azoxystrobin, including all steps, from bespoke laboratory toxicity tests to model calibration and validation, through to environmental risk assessment. Following the framework proposed in the European Food Safety Authority Scientific Opinion from 2018, we designed bespoke good laboratory practice-compliant laboratory toxicity studies based on test guideline 211 of the Organisation for Economic Co-operation and Development and then identified robust parameter values from those data for all relevant model parameters through model calibration. The DEB-TKTD model, DEBtox2019, then informed the design of the validation experiment. Once validated, the model was used to perform predictions for a time-variable exposure scenario generated by FOCUS. A moving time-window approach was used to perform the environmental risk assessment. This assessment method reduces uncertainty in the risk assessment while maintaining consistency with the traditional measures of risk. Environ Toxicol Chem 2024;43:2409-2421. © 2024 Syngenta Crop Protection AG. ibacon GmbH and The Author(s). Environmental Toxicology and Chemistry published by Wiley Periodicals LLC on behalf of SETAC.
毒代动力学-毒效动力学(TKTD)模型在化学物质的监管环境风险评估方面受到了越来越多的关注。这种机制模型可以将个体水平生物测定的所有可用数据整合到一个单一的框架中,并通过从实验室结果推断到基于地表水污染模型(例如,FOCUS)的时变暴露情景,对风险进行精细化评估。将动态能量预算(DEB)模型与 TKTD 模块(DEB-TKTD)相结合,是评估和预测化学物质对个体生物亚致死效应的主要方法。然而,全面的案例研究却很少。我们以标准水生测试物种溞属(Ceriodaphnia dubia)和杀菌剂肟菌酯为例,提供了一个最先进的例子,包括从定制的实验室毒性测试到模型校准和验证,再到环境风险评估的所有步骤。我们根据欧洲食品安全局 2018 年科学意见提出的框架,设计了符合良好实验室规范的定制实验室毒性研究,这些研究基于经济合作与发展组织的测试指南 211,然后通过模型校准从这些数据中确定所有相关模型参数的稳健参数值。DEB-TKTD 模型 DEBtox2019 随后为验证实验的设计提供了信息。一旦验证,该模型就被用于对 FOCUS 生成的时变暴露情景进行预测。采用移动时间窗口方法进行环境风险评估。这种评估方法在保持与传统风险衡量标准一致性的同时,减少了风险评估中的不确定性。Environ Toxicol Chem 2024;43:2409-2421. © 2024 先正达作物保护股份公司。ibacon GmbH 和作者。环境毒理学和化学由 Wiley Periodicals LLC 代表 SETAC 出版。