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通过毒代动力学建模、体外-体内外推和新方法学来提高对人类变异性的认识。

Advancing understanding of human variability through toxicokinetic modeling, in vitro-in vivo extrapolation, and new approach methodologies.

机构信息

Inotiv, 601 Keystone Park Drive, Suite 200, Morrisville, NC, 27560, USA.

Oak Ridge Institute for Science and Education, Oak Ridge, TN, 37830, USA.

出版信息

Hum Genomics. 2024 Nov 21;18(1):129. doi: 10.1186/s40246-024-00691-9.

Abstract

The merging of physiology and toxicokinetics, or pharmacokinetics, with computational modeling to characterize dosimetry has led to major advances for both the chemical and pharmaceutical research arenas. Driven by the mutual need to estimate internal exposures where in vivo data generation was simply not possible, the application of toxicokinetic modeling has grown exponentially in the past 30 years. In toxicology the need has been the derivation of quantitative estimates of toxicokinetic and toxicodynamic variability to evaluate the suitability of the tenfold uncertainty factor employed in risk assessment decision-making. Consideration of a host of physiologic, ontogenetic, genetic, and exposure factors are all required for comprehensive characterization. Fortunately, the underlying framework of physiologically based toxicokinetic models can accommodate these inputs, in addition to being amenable to capturing time-varying dynamics. Meanwhile, international interest in advancing new approach methodologies has fueled the generation of in vitro toxicity and toxicokinetic data that can be applied in in vitro-in vivo extrapolation approaches to provide human-specific risk-based information for historically data-poor chemicals. This review will provide a brief introduction to the structure and evolution of toxicokinetic and physiologically based toxicokinetic models as they advanced to incorporate variability and a wide range of complex exposure scenarios. This will be followed by a state of the science update describing current and emerging experimental and modeling strategies for population and life-stage variability, including the increasing application of in vitro-in vivo extrapolation with physiologically based toxicokinetic models in pharmaceutical and chemical safety research. The review will conclude with case study examples demonstrating novel applications of physiologically based toxicokinetic modeling and an update on its applications for regulatory decision-making. Physiologically based toxicokinetic modeling provides a sound framework for variability evaluation in chemical risk assessment.

摘要

生理学和毒代动力学(或药代动力学)与计算建模的融合,用于描述剂量学,这为化学和制药研究领域带来了重大进展。由于在体内数据生成根本不可能的情况下,需要相互估计内部暴露量,因此在过去 30 年中,毒代动力学建模的应用呈指数级增长。在毒理学中,需要定量估计毒代动力学和毒效动力学的可变性,以评估风险评估决策中使用的十倍不确定性因素的适用性。需要综合考虑一系列生理、个体发生、遗传和暴露因素,以进行全面描述。幸运的是,基于生理学的毒代动力学模型的基本框架可以容纳这些输入,并且还适用于捕获时变动态。与此同时,国际上对推进新方法方法的兴趣激发了体外毒性和毒代动力学数据的产生,这些数据可应用于体外-体内外推方法,为历史上数据匮乏的化学品提供基于人类风险的信息。

这篇综述将简要介绍毒代动力学和基于生理学的毒代动力学模型的结构和演变,因为它们已发展到包含变异性和广泛的复杂暴露情况。接下来将介绍目前和新兴的用于群体和生命阶段变异性的实验和建模策略的科学现状更新,包括越来越多地将基于生理学的毒代动力学模型与体外-体内外推相结合在药物和化学安全研究中的应用。

综述将以案例研究为例,展示基于生理学的毒代动力学建模的新应用,并更新其在监管决策中的应用。基于生理学的毒代动力学模型为化学风险评估中的变异性评估提供了一个合理的框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/745c/11580331/86a17be27a83/40246_2024_691_Fig1_HTML.jpg

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