School of Chemical and Biological Engineering, Seoul National University, Seoul, 08826, Republic of Korea.
Department of Chemical Engineering, Hongik University, Seoul, 04066, Republic of Korea.
Adv Healthc Mater. 2018 Jan;7(2). doi: 10.1002/adhm.201700419. Epub 2017 Sep 25.
In the drug development process, the accurate prediction of drug efficacy and toxicity is important in order to reduce the cost, labor, and effort involved. For this purpose, conventional 2D cell culture models are used in the early phase of drug development. However, the differences between the in vitro and the in vivo systems have caused the failure of drugs in the later phase of the drug-development process. Therefore, there is a need for a novel in vitro model system that can provide accurate information for evaluating the drug efficacy and toxicity through a closer recapitulation of the in vivo system. Recently, the idea of using microtechnology for mimicking the microscale tissue environment has become widespread, leading to the development of "organ-on-a-chip." Furthermore, the system is further developed for realizing a multiorgan model for mimicking interactions between multiple organs. These advancements are still ongoing and are aimed at ultimately developing "body-on-a-chip" or "human-on-a-chip" devices for predicting the response of the whole body. This review summarizes recently developed organ-on-a-chip technologies, and their applications for reproducing multiorgan functions.
在药物开发过程中,准确预测药物的疗效和毒性对于降低成本、劳动力和精力至关重要。为此,在药物开发的早期阶段使用传统的 2D 细胞培养模型。然而,体外和体内系统之间的差异导致药物在药物开发过程的后期阶段失败。因此,需要一种新的体外模型系统,通过更接近体内系统的重现来提供评估药物疗效和毒性的准确信息。最近,使用微技术模拟微尺度组织环境的想法已经普及,从而开发出“芯片上器官”。此外,该系统进一步开发,以实现模拟多个器官之间相互作用的多器官模型。这些进展仍在进行中,最终目的是开发“芯片上人体”或“芯片上人类”设备,以预测整个身体的反应。本文综述了最近开发的器官芯片技术及其在再现多器官功能方面的应用。