Przybyla Laralynne, Lakins Johnathon N, Weaver Valerie M
Center for Bioengineering and Tissue Regeneration and Department of Surgery, University of California, San Francisco, San Francisco, CA 94143, USA.
Center for Bioengineering and Tissue Regeneration and Department of Surgery, University of California, San Francisco, San Francisco, CA 94143, USA; Departments of Anatomy, Bioengineering, and Therapeutic Sciences, Eli and Edythe Broad Center of Regeneration Medicine and Stem Cell Research, and The Helen Diller Family Comprehensive Cancer Center, University of California, San Francisco, San Francisco, CA 94143, USA.
Cell Stem Cell. 2016 Oct 6;19(4):462-475. doi: 10.1016/j.stem.2016.06.018. Epub 2016 Jul 21.
Regenerative medicine is predicated on understanding the mechanisms regulating development and applying these conditions to direct stem cell fate. Embryogenesis is guided by cell-cell and cell-matrix interactions, but it is unclear how these physical cues influence stem cells in culture. We used human embryonic stem cells (hESCs) to examine whether mechanical features of the extracellular microenvironment could differentially modulate mesoderm specification. We found that, on a hydrogel-based compliant matrix, hESCs accumulate β-catenin at cell-cell adhesions and show enhanced Wnt-dependent mesoderm differentiation. Mechanistically, Src-driven ubiquitination of E-cadherin by Cbl-like ubiquitin ligase releases P120-catenin to facilitate transcriptional activity of β-catenin, which initiates and reinforces mesoderm differentiation. By contrast, on a stiff hydrogel matrix, hESCs show elevated integrin-dependent GSK3 and Src activity that promotes β-catenin degradation and inhibits differentiation. Thus, we found that mechanical features of the microenvironmental matrix influence tissue-specific differentiation of hESCs by altering the cellular response to morphogens.
再生医学基于对调控发育机制的理解,并将这些条件应用于引导干细胞命运。胚胎发生受细胞间和细胞与基质相互作用的引导,但尚不清楚这些物理信号如何影响培养中的干细胞。我们使用人类胚胎干细胞(hESCs)来研究细胞外微环境的机械特性是否能差异性地调节中胚层特化。我们发现,在基于水凝胶的柔性基质上,hESCs在细胞间黏附处积累β-连环蛋白,并显示出增强的Wnt依赖的中胚层分化。从机制上讲,Cbl样泛素连接酶由Src驱动的E-钙黏蛋白泛素化释放P120-连环蛋白,以促进β-连环蛋白的转录活性,从而启动并加强中胚层分化。相比之下,在坚硬的水凝胶基质上,hESCs显示出整合素依赖的GSK3和Src活性升高,这促进了β-连环蛋白的降解并抑制了分化。因此,我们发现微环境基质的机械特性通过改变细胞对形态发生素的反应来影响hESCs的组织特异性分化。