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利用具有纳米结构的生物活性材料调控干细胞命运和功能用于再生医学

Regulation of stem cell fate and function by using bioactive materials with nanoarchitectonics for regenerative medicine.

作者信息

Hu Wei, Shi Jiaming, Lv Wenyan, Jia Xiaofang, Ariga Katsuhiko

机构信息

School of Pharmaceutical Sciences (Shenzhen), Shenzhen Campus of Sun Yat-sen University, Shenzhen P. R. China.

International Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS), Ibaraki, Japan.

出版信息

Sci Technol Adv Mater. 2022 Jun 22;23(1):393-412. doi: 10.1080/14686996.2022.2082260. eCollection 2022.

Abstract

Nanoarchitectonics has emerged as a post-nanotechnology concept. As one of the applications of nanoarchitectonics, this review paper discusses the control of stem cell fate and function as an important issue. For hybrid nanoarchitectonics involving living cells, it is crucial to understand how biomaterials and their nanoarchitected structures regulate behaviours and fates of stem cells. In this review, biomaterials for the regulation of stem cell fate are firstly discussed. Besides multipotent differentiation, immunomodulation is an important biological function of mesenchymal stem cells (MSCs). MSCs can modulate immune cells to treat multiple immune- and inflammation-mediated diseases. The following sections summarize the recent advances of the regulation of the immunomodulatory functions of MSCs by biophysical signals. In the third part, we discussed how biomaterials direct the self-organization of pluripotent stem cells for organoid. Bioactive materials are constructed which mimic the biophysical cues of microenvironment such as elasticity, viscoelasticity, biodegradation, fluidity, topography, cell geometry, and etc. Stem cells interpret these biophysical cues by different cytoskeletal forces. The different cytoskeletal forces lead to substantial transcription and protein expression, which affect stem cell fate and function. Regulations of stem cells could not be utilized only for tissue repair and regenerative medicine but also potentially for production of advanced materials systems. Materials nanoarchitectonics with integration of stem cells and related biological substances would have high impacts in science and technology of advanced materials.

摘要

纳米结构学已成为一种后纳米技术概念。作为纳米结构学的应用之一,本综述论文将干细胞命运和功能的调控作为一个重要问题进行讨论。对于涉及活细胞的混合纳米结构学而言,了解生物材料及其纳米结构如何调节干细胞的行为和命运至关重要。在本综述中,首先讨论了用于调控干细胞命运的生物材料。除了多能分化外,免疫调节是间充质干细胞(MSCs)的一项重要生物学功能。MSCs可以调节免疫细胞以治疗多种免疫和炎症介导的疾病。以下各节总结了生物物理信号调控MSCs免疫调节功能的最新进展。在第三部分,我们讨论了生物材料如何引导多能干细胞自组装形成类器官。构建了模拟微环境生物物理线索(如弹性、粘弹性、生物降解性、流动性、拓扑结构、细胞几何形状等)的生物活性材料。干细胞通过不同的细胞骨架力来解读这些生物物理线索。不同的细胞骨架力导致大量的转录和蛋白质表达,从而影响干细胞的命运和功能。干细胞的调控不仅可用于组织修复和再生医学,还可能用于先进材料系统的生产。将干细胞与相关生物物质整合的材料纳米结构学将对先进材料的科学技术产生重大影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62e2/9246028/45e9387ab3dd/TSTA_A_2082260_UF0001_OC.jpg

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