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Leveraging Biomaterial Mechanics to Improve Pluripotent Stem Cell Applications for Tissue Engineering

机译:利用生物材料力学改善多能干细胞在组织工程中的应用

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摘要

A primary goal in tissue engineering is to develop functional tissues by recapitulating salient features of complex biological systems that exhibit a diverse range of physical forces. Induced pluripotent stem cells (iPSCs) are promising autologous cell sources to execute these developmental programs and their functions; however, cells require an extracellular environment where they will sense and respond to mechanical forces. Thus, understanding the biophysical relationships between stem cells and their extracellular environments will improve the ability to design complex biological systems through tissue engineering. This article first describes how the mechanical properties of the environment are important determinants of developmental processes, and then further details how biomaterials can be designed to precisely control the mechanics of cell-matrix interactions in order to study and define their reprogramming, self-renewal, differentiation, and morphogenesis. Finally, a perspective is presented on how insights from the mechanics of cell-matrix interactions can be leveraged to control pluripotent stem cells for tissue engineering applications.
机译:组织工程学的主要目标是通过概括表现出多种物理力的复杂生物系统的显着特征来开发功能组织。诱导多能干细胞(iPSC)是有前途的自体细胞来源,可以执行这些发育程序及其功能。然而,细胞需要一个细胞外环境,在该环境中它们将感知并响应机械力。因此,了解干细胞与其细胞外环境之间的生物物理关系将提高通过组织工程设计复杂生物系统的能力。本文首先介绍了环境的机械特性如何成为发育过程的重要决定因素,然后进一步详细介绍了如何设计生物材料以精确控制细胞-基质相互作用的机理,以便研究和定义它们的重编程,自我更新,分化和形态发生。最后,就如何利用细胞-基质相互作用机制的见解来控制多能干细胞进行组织工程应用提出了一个观点。

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