Kim Min Beom, Hwangbo Soonho, Jang Sungho, Jo Yun Kee
Department of Biomedical Convergence Science and Technology, School of Convergence, Kyungpook National University, Daegu 41566, South Korea.
Department of Chemical Engineering, Gyeongsang National University, Jinju 52828, South Korea.
Mater Today Bio. 2022 Jul 1;16:100345. doi: 10.1016/j.mtbio.2022.100345. eCollection 2022 Dec.
The recent spike in the instances of complex physiological host-microbe interactions has raised the demand for developing models that recapitulate the microbial microenvironment in the human body. Organoids are steadily emerging as an culture system that closely mimics the structural, functional, and genetic features of complex human organs, particularly for better understanding host-microbe interactions. Recent advances in organoid culture technology have become new avenues for assessing the pathogenesis of symbiotic interactions, pathogen-induced infectious diseases, and various other diseases. The co-cultures of organoids with microbes have shown great promise in simulating host-microbe interactions with a high level of complexity for further advancement in related fields. In this review, we provide an overview of bioengineering approaches for microbe-co-cultured organoids. Latest developments in the applications of microbe-co-cultured organoids to study human physiology and pathophysiology are also highlighted. Further, an outlook on future research on bioengineered organoid co-cultures for various applications is presented.
近期,复杂的生理宿主 - 微生物相互作用实例激增,这使得开发能够重现人体微生物微环境的模型的需求不断增加。类器官正逐渐成为一种培养系统,它能紧密模拟复杂人体器官的结构、功能和遗传特征,尤其有助于更好地理解宿主 - 微生物相互作用。类器官培养技术的最新进展已成为评估共生相互作用、病原体诱导的传染病及其他各种疾病发病机制的新途径。类器官与微生物的共培养在模拟高度复杂的宿主 - 微生物相互作用方面展现出巨大潜力,有望推动相关领域的进一步发展。在本综述中,我们概述了微生物共培养类器官的生物工程方法。还重点介绍了微生物共培养类器官在研究人体生理学和病理生理学应用方面的最新进展。此外,还对用于各种应用的生物工程类器官共培养的未来研究前景进行了展望。