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展望未来:基于干细胞的再生医学的先进 3D 生物材料。

Looking into the Future: Toward Advanced 3D Biomaterials for Stem-Cell-Based Regenerative Medicine.

机构信息

Department of Cardiovascular and Thoracic Surgery, Translational Medical Center for Stem Cell Therapy & Institute for Regenerative Medicine, Shanghai East Hospital, Tongji University School of Medicine, Shanghai, 200120, China.

Key Laboratory for Developmental Genes and Human Disease, Ministry of Education, Institute of Life Sciences, Southeast University, Nanjing, 210096, China.

出版信息

Adv Mater. 2018 Apr;30(17):e1705388. doi: 10.1002/adma.201705388. Epub 2018 Feb 16.

Abstract

Stem-cell-based therapies have the potential to provide novel solutions for the treatment of a variety of diseases, but the main obstacles to such therapies lie in the uncontrolled differentiation and functional engraftment of implanted tissues. The physicochemical microenvironment controls the self-renewal and differentiation of stem cells, and the key step in mimicking the stem cell microenvironment is to construct a more physiologically relevant 3D culture system. Material-based 3D assemblies of stem cells facilitate the cellular interactions that promote morphogenesis and tissue organization in a similar manner to that which occurs during embryogenesis. Both natural and artificial materials can be used to create 3D scaffolds, and synthetic organic and inorganic porous materials are the two main kinds of artificial materials. Nanotechnology provides new opportunities to design novel advanced materials with special physicochemical properties for 3D stem cell culture and transplantation. Herein, the advances and advantages of 3D scaffold materials, especially with respect to stem-cell-based therapies, are first outlined. Second, the stem cell biology in 3D scaffold materials is reviewed. Third, the progress and basic principles of developing 3D scaffold materials for clinical applications in tissue engineering and regenerative medicine are reviewed.

摘要

基于干细胞的疗法有可能为治疗多种疾病提供新的解决方案,但此类疗法的主要障碍在于植入组织的不可控分化和功能植入。物理化学微环境控制干细胞的自我更新和分化,模拟干细胞微环境的关键步骤是构建更接近生理的 3D 培养系统。基于材料的干细胞 3D 组装促进细胞间相互作用,以类似于胚胎发生过程中发生的方式促进形态发生和组织组织。天然和人工材料都可用于创建 3D 支架,合成有机和无机多孔材料是两种主要的人工材料。纳米技术为设计具有特殊物理化学性质的新型先进材料提供了新的机会,用于 3D 干细胞培养和移植。本文首先概述了 3D 支架材料的进展和优势,特别是在基于干细胞的治疗方面。其次,回顾了 3D 支架材料中的干细胞生物学。第三,综述了用于组织工程和再生医学临床应用的 3D 支架材料的进展和基本原则。

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