再生医学
诱导多能干细胞
机械生物学
生物
干细胞
细胞生物学
细胞分化
组织工程
电池类型
细胞
细胞命运测定
胚胎干细胞
神经科学
遗传学
转录因子
基因
作者
Ronald G. Ireland,Craig A. Simmons
出处
期刊:Stem Cells
[Oxford University Press]
日期:2015-07-20
卷期号:33 (11): 3187-3196
被引量:54
摘要
A stem cell in its microenvironment is subjected to a myriad of soluble chemical cues and mechanical forces that act in concert to orchestrate cell fate. Intuitively, many of these soluble and biophysical factors have been the focus of intense study to successfully influence and direct cell differentiation in vitro. Human pluripotent stem cells (hPSCs) have been of considerable interest in these studies due to their great promise for regenerative medicine. Culturing and directing differentiation of hPSCs, however, is currently extremely labor-intensive and lacks the efficiency required to generate large populations of clinical-grade cells. Improved efficiency may come from efforts to understand how the cell biophysical signals can complement biochemical signals to regulate cell pluripotency and direct differentiation. In this concise review, we explore hPSC mechanobiology and how the hPSC biophysical microenvironment can be manipulated to maintain and differentiate hPSCs into functional cell types for regenerative medicine and tissue engineering applications.
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