Biomedical applications of organoids derived from the digestive system.

IF 4.6 2区 生物学 Q2 CELL BIOLOGY
Frontiers in Cell and Developmental Biology Pub Date : 2025-05-30 eCollection Date: 2025-01-01 DOI:10.3389/fcell.2025.1599384
Zhensheng Xu, Zhongwen Lei, Qiuhua Cheng, Yuanhui Gao, Yang Xiang
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Abstract

The global incidence of digestive system diseases is increasing, posing a significant public health challenge and driving an escalating demand for research into the mechanisms underlying their onset and progression. Traditional cell models and xenotransplantation animal models have been widely used to simulate human digestive diseases, thereby enhancing our understanding of disease occurrence, progression, and drug resistance. However, these models fail to fully replicate the complex cellular microenvironment and spatial structure, and are further limited by individual and species differences. Organoid technology, as an emerging in vitro cell culture approach, enables the precise culturing and differentiation of human stem cells to generate highly tissue-specific and functionally intact organoids. This technology not only better recapitulates cell-to-cell interactions, extracellular matrix (ECM) microenvironment, and organ-specific physiological functions but also more closely mimics the human physiological state in vitro. Moreover, it reduces reliance on animal experiments, enhances the translatability of research findings, mitigates the limitations of animal models and two-dimensional cell models, and plays a pivotal role in simulating the physiological and pathological processes of the human digestive tract. Currently, common techniques for constructing organoids include embedding culture, rotating culture, magnetic suspension culture, organ-on-a-chip, three-dimensional (3D), and four-dimensional (4D) printing technologies. Seed cells are primarily derived from digestive system epithelial cells and pluripotent stem cells. This article reviews the construction methods of digestive system organoids, evaluates their applications in studying growth and development mechanisms, disease modeling and mechanism research, drug screening, regenerative medicine, and precision medicine, and identifies existing challenges and future research directions to provide a valuable reference for biomedical research.

消化系统类器官的生物医学应用。
消化系统疾病的全球发病率正在增加,这对公共卫生构成了重大挑战,并推动了对其发病和进展机制研究的不断升级的需求。传统的细胞模型和异种移植动物模型已被广泛用于模拟人类消化系统疾病,从而增强了我们对疾病发生、进展和耐药性的了解。然而,这些模型不能完全复制复杂的细胞微环境和空间结构,并且受到个体和物种差异的进一步限制。类器官技术作为一种新兴的体外细胞培养方法,能够精确地培养和分化人类干细胞,以产生高度组织特异性和功能完整的类器官。该技术不仅能更好地再现细胞间相互作用、细胞外基质(ECM)微环境和器官特异性生理功能,而且能更接近地模拟体外人体生理状态。减少了对动物实验的依赖,提高了研究结果的可翻译性,减轻了动物模型和二维细胞模型的局限性,在模拟人体消化道的生理病理过程中起着举足轻重的作用。目前,构建类器官的常用技术包括包埋培养、旋转培养、磁悬浮培养、芯片上器官、三维(3D)和四维(4D)打印技术。种子细胞主要来源于消化系统上皮细胞和多能干细胞。本文综述了消化系统类器官的构建方法,评价了它们在生长发育机制研究、疾病建模与机制研究、药物筛选、再生医学、精准医学等方面的应用,并指出了存在的挑战和未来的研究方向,为生物医学研究提供有价值的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Cell and Developmental Biology
Frontiers in Cell and Developmental Biology Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
9.70
自引率
3.60%
发文量
2531
审稿时长
12 weeks
期刊介绍: Frontiers in Cell and Developmental Biology is a broad-scope, interdisciplinary open-access journal, focusing on the fundamental processes of life, led by Prof Amanda Fisher and supported by a geographically diverse, high-quality editorial board. The journal welcomes submissions on a wide spectrum of cell and developmental biology, covering intracellular and extracellular dynamics, with sections focusing on signaling, adhesion, migration, cell death and survival and membrane trafficking. Additionally, the journal offers sections dedicated to the cutting edge of fundamental and translational research in molecular medicine and stem cell biology. With a collaborative, rigorous and transparent peer-review, the journal produces the highest scientific quality in both fundamental and applied research, and advanced article level metrics measure the real-time impact and influence of each publication.
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