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器官芯片技术及其应用的全面综述

A Comprehensive Review of Organ-on-a-Chip Technology and Its Applications.

机构信息

Department of Chemical and Biomedical Engineering, West Virginia University, Morgantown, WV 26506, USA.

出版信息

Biosensors (Basel). 2024 May 1;14(5):225. doi: 10.3390/bios14050225.

Abstract

Organ-on-a-chip (OOC) is an emerging technology that simulates an artificial organ within a microfluidic cell culture chip. Current cell biology research focuses on in vitro cell cultures due to various limitations of in vivo testing. Unfortunately, in-vitro cell culturing fails to provide an accurate microenvironment, and in vivo cell culturing is expensive and has historically been a source of ethical controversy. OOC aims to overcome these shortcomings and provide the best of both in vivo and in vitro cell culture research. The critical component of the OOC design is utilizing microfluidics to ensure a stable concentration gradient, dynamic mechanical stress modeling, and accurate reconstruction of a cellular microenvironment. OOC also has the advantage of complete observation and control of the system, which is impossible to recreate in in-vivo research. Multiple throughputs, channels, membranes, and chambers are constructed in a polydimethylsiloxane (PDMS) array to simulate various organs on a chip. Various experiments can be performed utilizing OOC technology, including drug delivery research and toxicology. Current technological expansions involve multiple organ microenvironments on a single chip, allowing for studying inter-tissue interactions. Other developments in the OOC technology include finding a more suitable material as a replacement for PDMS and minimizing artefactual error and non-translatable differences.

摘要

器官芯片(OOC)是一种新兴技术,它在微流控细胞培养芯片中模拟人工器官。当前的细胞生物学研究侧重于体外细胞培养,因为体内测试存在各种限制。不幸的是,体外细胞培养无法提供准确的微环境,而体内细胞培养昂贵,并且历史上一直是伦理争议的来源。OOC 旨在克服这些缺点,并提供体内和体外细胞培养研究的最佳结合。OOC 设计的关键组成部分是利用微流控技术确保稳定的浓度梯度、动态机械应力建模以及对细胞微环境的精确重建。OOC 还具有完全观察和控制系统的优势,这在体内研究中是不可能实现的。在聚二甲基硅氧烷(PDMS)阵列中构建多个吞吐量、通道、膜和腔室,以在芯片上模拟各种器官。可以利用 OOC 技术进行各种实验,包括药物输送研究和毒理学研究。当前的技术扩展涉及在单个芯片上的多个器官微环境,从而可以研究组织间的相互作用。OOC 技术的其他发展包括寻找更合适的材料替代 PDMS 以及最小化人为误差和不可翻译的差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25ac/11118005/4d9dfb69fabd/biosensors-14-00225-g001.jpg

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