基于生理学的药物动力学建模在预测和描述临床药物相互作用的实用性
1Pharmacokinetics, Dynamics, Metabolism and Bioanalytics, Merck & Co, Inc, Boston, Massachusetts.
Drug metabolism and disposition: the biological fate of chemicals
|January 30, 2025
概括
基于生理学的药理动力学 (PBPK) 建模有助于预测药物相互作用 (DDI). 本综述涵盖了PBPK DDI的方法,模型和未来方向,强调其在药物开发中的关键作用.
科学领域:
- 药理动力学和药物新陈代谢
- 计算生物学和生物信息学
- 药物开发和监管科学 药物开发和监管科学
背景情况:
- 基于生理学的药理动力学 (PBPK) 建模是一种机械方法,用于预测药物相互作用 (DDI) 导致的药物暴露变化.
- PBPK DDI建模越来越多地被整合到药物发现和开发中,支持监管提交.
- 多种药物学的流行需要强大的方法来评估DDI.
研究的目的:
- 审查目前用于预测药物相互作用 (DDI) 的PBPK建模方法.
- 描述PBPK DDI模型结构,特性和应用.
- 讨论未来的方向,并总结最近的PBPK DDI例子.
主要方法:
- 审查PBPK和静态建模方法用于DDI预测.
- 对PBPK DDI模型结构和机制的分析.
- 已出版的PBPK DDI示例的汇编和摘要.
主要成果:
- 在药物开发中,PBPK建模是描述DDI的主要方法.
- 主要例子展示了PBPK DDI模型,描述了复杂的相互作用机制.
- 提供了2023年发布的209个PBPK DDI示例的摘要.
结论:
- PBPK模型是描述和预测DDI的重要工具.
- 在PBPK建模的持续进步将支持对各种疗法的DDI评估.
- 在临床环境中,PBPK建模对于导航多药理学至关重要.
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