Papamichail Lito, Koch Lena S, Veerman Devin, Broersen Kerensa, van der Meer Andries D
Department of Surgery, Erasmus MC Transplant Institute, University Medical Center Rotterdam, Rotterdam, Netherlands.
Department of Internal Medicine, Erasmus MC Transplant Institute, University Medical Center Rotterdam, Rotterdam, Netherlands.
Front Bioeng Biotechnol. 2025 Mar 11;13:1515340. doi: 10.3389/fbioe.2025.1515340. eCollection 2025.
Organoids are stem-cell derived tissue structures mimicking specific structural and functional characteristics of human organs. Despite significant advancements in the field over the last decade, challenges like limited long-term functional culture and lack of maturation are hampering the implementation of organoids in biomedical research. Culture of organoids in microfluidic chips is being used to tackle these challenges through dynamic and precise control over the organoid microenvironment. This review highlights the significant breakthroughs that have been made in the innovative field of "organoids-on-chip," demonstrating how these have contributed to advancing organoid models. We focus on the incorporation of organoids representative for various tissues into chips and discuss the latest findings in multi-organoids-on-chip approaches. Additionally, we examine current limitations and challenges of the field towards the development of reproducible organoids-on-chip systems. Finally, we discuss the potential of organoids-on-chip technology for both and applications.
类器官是源自干细胞的组织结构,模拟人体器官的特定结构和功能特征。尽管在过去十年该领域取得了重大进展,但诸如长期功能培养受限和缺乏成熟度等挑战,正阻碍类器官在生物医学研究中的应用。在微流控芯片中培养类器官正被用于应对这些挑战,通过对类器官微环境进行动态和精确的控制。本综述重点介绍了“芯片上的类器官”这一创新领域所取得的重大突破,展示了这些突破如何推动类器官模型的发展。我们专注于将代表各种组织的类器官整合到芯片中,并讨论芯片上多类器官方法的最新发现。此外,我们审视了该领域在开发可重复的芯片上类器官系统方面当前的局限性和挑战。最后,我们讨论了芯片上类器官技术在[此处原文缺失两个应用领域]和[此处原文缺失两个应用领域]应用方面的潜力。