Ni Kai, Che Bo, Yang Chongxin, Qin Youyuan, Gu Rong, Wang Chunhong, Luo Mingzhi, Deng Linhong
Changzhou Key Laboratory of Respiratory Medical Engineering, Institute of Biomedical Engineering and Health Sciences, School of Medical and Health Engineering, Changzhou University, Changzhou, Jiangsu, China.
Front Pharmacol. 2022 Dec 12;13:1033043. doi: 10.3389/fphar.2022.1033043. eCollection 2022.
The ongoing COVID-19 pandemic caused by severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) poses a never before seen challenge to human health and the world economy. However, it is difficult to widely use conventional animal and cell culture models in understanding the underlying pathological mechanisms of COVID-19, which in turn hinders the development of relevant therapeutic treatments, including drugs. To overcome this challenge, various three-dimensional (3D) pulmonary cell culture models such as organoids are emerging as an innovative toolset for simulating the pathophysiology occurring in the respiratory system, including bronchial airways, alveoli, capillary network, and pulmonary interstitium, which provide a robust and powerful platform for studying the process and underlying mechanisms of SARS-CoV-2 infection among the potential primary targets in the lung. This review introduces the key features of some of these recently developed tools, including organoid, lung-on-a-chip, and 3D bioprinting, which can recapitulate different structural compartments of the lung and lung function, in particular, accurately resembling the human-relevant pathophysiology of SARS-CoV-2 infection . In addition, the recent progress in developing organoids for alveolar and airway disease modeling and their applications for discovering drugs against SARS-CoV-2 infection are highlighted. These innovative 3D cell culture models together may hold the promise to fully understand the pathogenesis and eventually eradicate the pandemic of COVID-19.
由严重急性呼吸综合征冠状病毒2(SARS-CoV-2)引起的持续的新冠疫情对人类健康和世界经济构成了前所未有的挑战。然而,在理解新冠病毒的潜在病理机制方面,传统的动物和细胞培养模型难以广泛应用,这反过来又阻碍了包括药物在内的相关治疗方法的开发。为了克服这一挑战,各种三维(3D)肺细胞培养模型,如类器官,正在成为一种创新工具集,用于模拟呼吸系统中发生的病理生理学,包括支气管气道、肺泡、毛细血管网络和肺间质,为研究新冠病毒在肺中潜在主要靶点的感染过程及潜在机制提供了一个强大有力的平台。本综述介绍了一些最近开发的工具的关键特性,包括类器官、芯片肺和3D生物打印,这些工具可以重现肺的不同结构部分和肺功能,特别是准确模拟与人类相关的新冠病毒感染的病理生理学。此外,还重点介绍了用于肺泡和气道疾病建模的类器官开发的最新进展及其在发现抗新冠病毒感染药物方面的应用。这些创新的3D细胞培养模型共同有望全面了解发病机制,并最终根除新冠疫情。