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使用集成微生理系统(MPS)进行转化药代动力学和药效学应用的多功能缩放方法。

Multi-functional scaling methodology for translational pharmacokinetic and pharmacodynamic applications using integrated microphysiological systems (MPS).

作者信息

Maass Christian, Stokes Cynthia L, Griffith Linda G, Cirit Murat

机构信息

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, USA.

Stokes Consulting, Redwood City, USA.

出版信息

Integr Biol (Camb). 2017 Apr 18;9(4):290-302. doi: 10.1039/c6ib00243a.

Abstract

Microphysiological systems (MPS) provide relevant physiological environments in vitro for studies of pharmacokinetics, pharmacodynamics and biological mechanisms for translational research. Designing multi-MPS platforms is essential to study multi-organ systems. Typical design approaches, including direct and allometric scaling, scale each MPS individually and are based on relative sizes not function. This study's aim was to develop a new multi-functional scaling approach for integrated multi-MPS platform design for specific applications. We developed an optimization approach using mechanistic modeling and specification of an objective that considered multiple MPS functions, e.g., drug absorption and metabolism, simultaneously to identify system design parameters. This approach informed the design of two hypothetical multi-MPS platforms consisting of gut and liver (multi-MPS platform I) and gut, liver and kidney (multi-MPS platform II) to recapitulate in vivo drug exposures in vitro. This allows establishment of clinically relevant drug exposure-response relationships, a prerequisite for efficacy and toxicology assessment. Design parameters resulting from multi-functional scaling were compared to designs based on direct and allometric scaling. Human plasma time-concentration profiles of eight drugs were used to inform the designs, and profiles of an additional five drugs were calculated to test the designed platforms on an independent set. Multi-functional scaling yielded exposure times in good agreement with in vivo data, while direct and allometric scaling approaches resulted in short exposure durations. Multi-functional scaling allows appropriate scaling from in vivo to in vitro of multi-MPS platforms, and in the cases studied provides designs that better mimic in vivo exposures than standard MPS scaling methods.

摘要

微生理系统(MPS)在体外提供相关的生理环境,用于药代动力学、药效学和转化研究生物学机制的研究。设计多MPS平台对于研究多器官系统至关重要。典型的设计方法,包括直接缩放和异速生长缩放,分别对每个MPS进行缩放,且基于相对大小而非功能。本研究的目的是为特定应用开发一种用于集成多MPS平台设计的新型多功能缩放方法。我们开发了一种优化方法,使用机制建模和一个考虑多个MPS功能(如药物吸收和代谢)的目标规范,同时确定系统设计参数。该方法为两个假设的多MPS平台的设计提供了依据,这两个平台分别由肠道和肝脏组成(多MPS平台I)以及由肠道、肝脏和肾脏组成(多MPS平台II),以在体外重现体内药物暴露情况。这有助于建立临床相关的药物暴露-反应关系,这是疗效和毒理学评估的前提条件。将多功能缩放产生的设计参数与基于直接缩放和异速生长缩放的设计进行比较。使用八种药物的人体血浆时间-浓度曲线为设计提供依据,并计算另外五种药物的曲线以在独立数据集上测试设计的平台。多功能缩放产生的暴露时间与体内数据高度一致,而直接缩放和异速生长缩放方法导致暴露持续时间较短。多功能缩放允许从体内到体外对多MPS平台进行适当缩放,并且在所研究的案例中,所提供的设计比标准MPS缩放方法能更好地模拟体内暴露情况。

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