MOE Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Department of Chemistry, Laboratory of Flexible Electronics Technology, Center for Synthetic and Systems Biology, Tsinghua University, Beijing 100084, P.R. China.
Lab Chip. 2023 Mar 1;23(5):1192-1212. doi: 10.1039/d2lc00804a.
Organoids/organs-on-a-chip open up new frontiers for basic and clinical research of intestinal diseases. Species-specific differences hinder research on animal models, while organoids are emerging as powerful tools due to self-organization from stem cells and the reproduction of the functional properties . Organs-on-a-chip is also accelerating the process of faithfully mimicking the intestinal microenvironment. And by combining organoids and organ-on-a-chip technologies, they further are expected to serve as innovative preclinical tools and could outperform traditional cell culture models or animal models in the future. Above all, organoids/organs-on-a-chip with other strategies like genome editing, 3D printing, and organoid biobanks contribute to modeling intestinal homeostasis and disease. Here, the current challenges and future trends in intestinal pathophysiological models will be summarized.
类器官/芯片器官为肠道疾病的基础和临床研究开辟了新的前沿。种属特异性差异阻碍了动物模型的研究,而类器官由于干细胞的自我组织和功能特性的再现,正在成为强大的工具。芯片器官也在加速模拟肠道微环境的过程。通过将类器官和芯片器官技术相结合,它们有望进一步成为创新的临床前工具,并在未来超越传统的细胞培养模型或动物模型。最重要的是,类器官/芯片器官与基因组编辑、3D 打印和类器官生物库等其他策略一起,有助于模拟肠道稳态和疾病。本文总结了肠道病理生理学模型目前面临的挑战和未来的发展趋势。