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一种与药代动力学-药效学(PK-PD)模型相结合的无泵多器官芯片(MOC)。

A pumpless multi-organ-on-a-chip (MOC) combined with a pharmacokinetic-pharmacodynamic (PK-PD) model.

作者信息

Lee Hyuna, Kim Dae Shik, Ha Sang Keun, Choi Inwook, Lee Jong Min, Sung Jong Hwan

机构信息

Department of Chemical Engineering, Hongik University, Seoul, Republic of Korea.

School of Chemical and Biological Engineering, Seoul National University, Seoul, Republic of Korea.

出版信息

Biotechnol Bioeng. 2017 Feb;114(2):432-443. doi: 10.1002/bit.26087. Epub 2016 Sep 14.

Abstract

A multi-organ-on-a-chip (MOC), also known as a human-on-a-chip, aims to simulate whole body response to drugs by connecting microscale cell cultures of multiple tissue types via fluidic channels and reproducing the interaction between them. While several studies have demonstrated the usefulness of MOC at a proof-of-concept level, improvements are needed to enable wider acceptance of such systems; ease of use for general biological researchers, and a mathematical framework to design and interpret the MOC systems. Here, we introduce a pumpless, user-friendly MOC which can be easily assembled and operated, and demonstrate the use of a PK-PD model for interpreting drug's action inside the MOC. The metabolism-dependent anticancer activity of a flavonoid, luteolin, was evaluated in a two-compartment MOC containing the liver (HepG2) and the tumor (HeLa) cells, and the observed anticancer activity was significantly weaker than that anticipated from a well plate study. Simulation of a PK-PD model revealed that simultaneous metabolism and tumor-killing actions likely resulted in a decreased anti-cancer effect. Our work demonstrates that the combined platform of mathematical PK-PD model and an experimental MOC can be a useful tool for gaining an insight into the mechanism of action of drugs with interactions between multiple organs. Biotechnol. Bioeng. 2017;114: 432-443. © 2016 Wiley Periodicals, Inc.

摘要

多器官芯片(MOC),也被称为人体芯片,旨在通过流体通道连接多种组织类型的微尺度细胞培养物并重现它们之间的相互作用,来模拟全身对药物的反应。虽然多项研究已在概念验证层面证明了MOC的有用性,但仍需要改进,以促使这类系统得到更广泛的接受;提高普通生物学研究人员的易用性,以及建立一个用于设计和解释MOC系统的数学框架。在此,我们介绍一种无泵、用户友好的MOC,它易于组装和操作,并展示了使用药代动力学-药效学(PK-PD)模型来解释MOC内药物的作用。在一个包含肝脏(HepG2)和肿瘤(HeLa)细胞的双室MOC中评估了一种黄酮类化合物木犀草素的代谢依赖性抗癌活性,观察到的抗癌活性明显弱于平板研究预期的活性。PK-PD模型模拟表明,同时发生的代谢和杀肿瘤作用可能导致抗癌效果降低。我们的工作表明,数学PK-PD模型与实验性MOC的组合平台可成为深入了解具有多器官间相互作用的药物作用机制的有用工具。《生物技术与生物工程》2017年;114:432 - 443。© 2016威利期刊公司

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