The potential of multi-organ-on-chip models for assessment of drug disposition as alternative to animal testing

IF 6.1 Q1 TOXICOLOGY Current Opinion in Toxicology Pub Date : 2021-09-01 DOI:10.1016/j.cotox.2021.05.001
Damiën van Berlo , Evita van de Steeg , Hossein Eslami Amirabadi , Rosalinde Masereeuw
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引用次数: 15

Abstract

The development of new medicines suffers from attrition, especially in the development pipeline. Eight out of nine drug candidates entering the clinical testing phase fail, mostly due to poor safety and efficacy. The low predictive value of animal models, used in earlier phases of drug development, for effects in humans poses a major problem. In particular, drug disposition can markedly differentiate in experimental animals versus humans. Meanwhile, classic in vitro methods can be used but these models lack the complexity to mimic holistic physiological processes occurring in the human body, especially organ–organ interactions. Therefore, better predictive methods to investigate drug disposition in the preclinical phase are needed, for which recent developments in multiorgan-on-chip methods are very promising. To be able to capture human physiology as good as possible, multiorgan-on-chips should feature 1) human cells endogenously expressing main transporters and metabolizing enzymes; 2) organ models relevant for exposure route; 3) individual organs-on-chip connected in a physiologically relevant manner; 4) a tight cellular barrier between the compartments; 5) organ models properly polarized in 3D; 6) allow for sampling in all major compartments; 7) constructed from materials that do not absorb or adsorb the compound of interest; 8) cells should grow in absence of fetal calf serum and Matrigel; 9) validated with a panel of compounds with known characteristics in humans; 10) an integrated computer model translating concentrations to the human situation. Here, an overview of available systems is presented and the difficult route towards a fully validated system is discussed.

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多器官芯片模型作为替代动物试验的药物处置评估的潜力
新药的开发受到损耗的影响,特别是在开发管道中。进入临床试验阶段的9种候选药物中有8种失败,主要是由于安全性和有效性差。在药物开发的早期阶段使用的动物模型对人类影响的预测价值较低,这构成了一个主要问题。特别是,药物处置在实验动物和人类之间有明显的差异。同时,经典的体外方法可以使用,但这些模型缺乏模拟人体整体生理过程的复杂性,特别是器官-器官相互作用。因此,需要更好的预测方法来研究临床前阶段的药物处置,为此,最近多器官芯片方法的发展非常有希望。为了尽可能地捕捉人体生理机能,多器官芯片应该具备以下特点:1)内源性表达主要转运蛋白和代谢酶的人体细胞;2)与暴露途径相关的器官模型;3)以生理相关方式连接的单个器官芯片;4)隔室之间有紧密的细胞屏障;5)器官模型在三维中正确极化;6)允许在所有主要隔间取样;7)由不吸收或吸附目标化合物的材料构成;8)细胞在没有胎牛血清和Matrigel的情况下也能生长;9)用一组已知具有人体特征的化合物进行验证;10)一个综合的计算机模型,将浓度转化为人类的情况。在这里,概述了可用系统,并讨论了实现完全验证系统的困难路线。
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来源期刊
Current Opinion in Toxicology
Current Opinion in Toxicology Pharmacology, Toxicology and Pharmaceutics-Toxicology
CiteScore
10.40
自引率
0.00%
发文量
43
期刊介绍: The aims and scope of Current Opinion in Toxicology is to systematically provide the reader with timely and provocative views and opinions of the highest qualified and recognized experts on current advances in selected topics within the field of toxicology. The goal is that Current Opinion in Toxicology will be an invaluable source of information and perspective for researchers, teachers, managers and administrators, policy makers and students. Division of the subject into sections: For this purpose, the scope of Toxicology is divided into six selected high impact themed sections, each of which is reviewed once a year: Mechanistic Toxicology, Metabolic Toxicology, Risk assessment in Toxicology, Genomic Toxicology, Systems Toxicology, Translational Toxicology.
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