超越传统毒理学:PBTK建模的变革力量

IF 2.7 3区 医学 Q3 TOXICOLOGY
Anagha Damre, Aniruddha Banerjee
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引用次数: 0

摘要

基于生理的毒物动力学(PBTK)建模已成为毒物动力学的重要工具,可以定量评估各种生物系统中的化学吸收、分布、代谢和排泄(ADME)。与传统的毒物动力学方法不同,PBTK模型整合了生理和生化参数,以允许精确的种间和剂量外推。这种能力增强了它们在药品、工业化学品、食品添加剂、化妆品和农药监管风险评估中的适用性。高通量毒物动力学(HTTK)和体外到体内外推(IVIVE)通过利用大规模实验数据集和计算方法进一步提高了PBTK模型的预测能力。此外,这些模型促进了途径到途径的外推,预测了不同给药途径(如口服、吸入和皮肤途径)的全身暴露。PBTK建模还可以估计特定的目标组织浓度,跨物种外推,以及对特殊种群的外推,从而改进人类生物学建模。此外,PBTK模型在生态风险评价中的整合,为评价环境化学物质暴露对不同物种的影响提供了支持。随着监管机构越来越多地采用PBTK模型进行毒性评估,它们在推进数据驱动的风险评估和减少对动物试验的依赖方面的作用不断增强。这篇综述探讨了PBTK模型在毒性动力学中的应用,以及它与风险评估和种间外推的监管指南的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Beyond traditional toxicology: The transformative power of PBTK modeling

Beyond traditional toxicology: The transformative power of PBTK modeling
Physiologically Based Toxicokinetic (PBTK) modeling has emerged as a crucial tool in toxicokinetics, enabling the quantitative assessment of chemical absorption, distribution, metabolism, and excretion (ADME) across various biological systems. Unlike traditional toxicokinetic approaches, PBTK models integrate physiological and biochemical parameters to allow for precise interspecies and dose extrapolations. This capability enhances their applicability in regulatory risk assessment for pharmaceuticals, industrial chemicals, food additives, cosmetics, and pesticides. High Throughput Toxicokinetics (HTTK) and in vitro-to-in vivo extrapolations (IVIVE) further improve the predictive power of PBTK models by utilizing large-scale experimental datasets and computational approaches. Additionally, these models facilitate route-to-route extrapolations, predicting systemic exposure across different administration routes such as oral, inhalation, and dermal pathways. PBTK modeling also enables the estimation of specific target tissue concentrations, cross-species extrapolations, and extrapolations to special populations, thereby improving human biological modeling. Furthermore, the integration of PBTK models in ecological risk assessment supports the evaluation of environmental chemical exposure effects on diverse species. As regulatory agencies increasingly adopt PBTK models for toxicity evaluations, their role in advancing data-driven risk assessment and reducing reliance on animal testing continues to grow. This review explores the application of PBTK modeling in toxicokinetics and its alignment with regulatory guidelines for risk assessment and interspecies extrapolation.
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来源期刊
Toxicology in Vitro
Toxicology in Vitro 医学-毒理学
CiteScore
6.50
自引率
3.10%
发文量
181
审稿时长
65 days
期刊介绍: Toxicology in Vitro publishes original research papers and reviews on the application and use of in vitro systems for assessing or predicting the toxic effects of chemicals and elucidating their mechanisms of action. These in vitro techniques include utilizing cell or tissue cultures, isolated cells, tissue slices, subcellular fractions, transgenic cell cultures, and cells from transgenic organisms, as well as in silico modelling. The Journal will focus on investigations that involve the development and validation of new in vitro methods, e.g. for prediction of toxic effects based on traditional and in silico modelling; on the use of methods in high-throughput toxicology and pharmacology; elucidation of mechanisms of toxic action; the application of genomics, transcriptomics and proteomics in toxicology, as well as on comparative studies that characterise the relationship between in vitro and in vivo findings. The Journal strongly encourages the submission of manuscripts that focus on the development of in vitro methods, their practical applications and regulatory use (e.g. in the areas of food components cosmetics, pharmaceuticals, pesticides, and industrial chemicals). Toxicology in Vitro discourages papers that record reporting on toxicological effects from materials, such as plant extracts or herbal medicines, that have not been chemically characterized.
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