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用于类器官发育及生物医学应用的理性设计基质材料。

Rational design matrix materials for organoid development and application in biomedicine.

作者信息

Huang Yue, Zhang Xiaoyu, Zhang Wanjun, Tang Jinglong, Liu Jing

机构信息

CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety & CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, University of Chinese Academy of Sciences, Beijing 100190, China.

Department of Occupational and Environmental Health, School of Public Health, Qingdao University, Qingdao 266021, China.

出版信息

Regen Biomater. 2025 May 14;12:rbaf038. doi: 10.1093/rb/rbaf038. eCollection 2025.

Abstract

Organoids are three-dimensional tissue analogues grown . Although they are not human organs in the strict sense, they can mimic the structure and function of tissues to the maximum extent, and have broad application prospects in the fields of organ development, personalized medicine, regenerative medicine, disease modeling, drug screening, gene editing, etc. There is even hope that organoids can replace experimental animals for preclinical testing, which will greatly shorten the cycle of preclinical testing and improve its efficiency. Nowadays, Matrigel remains the predominant substitute for organoid culture systems. At the same time, new extracellular matrix or inspired polymer materials with tunable and optimized biochemical and biophysical properties continue to emerge, which are of great significance for efficient and high-level cultivation of organoids. In this review, we critically evaluate how mechanobiological signaling dynamics at the cell-matrix interface inform the rational engineering of biomimetic extracellular matrices to achieve standardized and phenotypically regulated patient-derived organoid cultures. Then, we systematically classify hydrogel-based matrices encompassing natural, biohybrid, synthetic, protein-engineered and DNA crosslinked matrix systems by their biocompatibility and functional compatibility. Focusing on cancer oncogenesis and progression research, drug development and personalized medicine, we highlight biomimetic hydrogel innovations that recapitulate tumor organoids development. By summarizing the obstacles that hinder the development of organoid hydrogels, we hope to provide an outlook on the future directions for the development of organoid hydrogels and promote the application of organoids in the field of biomedicine.

摘要

类器官是培养的三维组织类似物。尽管严格意义上来说它们并非人体器官,但它们能够最大程度地模拟组织的结构和功能,在器官发育、个性化医疗、再生医学、疾病建模、药物筛选、基因编辑等领域具有广阔的应用前景。甚至有望用类器官替代实验动物进行临床前测试,这将大大缩短临床前测试周期并提高其效率。如今,基质胶仍然是类器官培养系统的主要替代品。与此同时,具有可调节和优化的生化及生物物理特性的新型细胞外基质或仿生聚合物材料不断涌现,这对于高效、高水平地培养类器官具有重要意义。在这篇综述中,我们批判性地评估了细胞-基质界面的机械生物学信号动力学如何为仿生细胞外基质的合理工程设计提供信息,以实现标准化且表型可控的患者来源类器官培养。然后,我们根据其生物相容性和功能相容性,对基于水凝胶的基质进行了系统分类,包括天然、生物杂交、合成、蛋白质工程和DNA交联基质系统。聚焦于癌症发生和进展研究、药物开发及个性化医疗,我们重点介绍了概括肿瘤类器官发育的仿生水凝胶创新成果。通过总结阻碍类器官水凝胶发展的障碍,我们希望展望类器官水凝胶未来的发展方向,并推动类器官在生物医学领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da5a/12187070/f4d18530facd/rbaf038f7.jpg

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