Alimperti Stella, Andreadis Stelios T
Bioengineering Laboratory, Department of Chemical and Biological Engineering, University at Buffalo, State University of New York, Amherst, NY 14260-4200, USA.
Bioengineering Laboratory, Department of Chemical and Biological Engineering, University at Buffalo, State University of New York, Amherst, NY 14260-4200, USA; Center of Excellence in Bioinformatics and Life Sciences, Buffalo, NY 14203, USA.
Stem Cell Res. 2015 May;14(3):270-82. doi: 10.1016/j.scr.2015.02.002. Epub 2015 Feb 19.
Accumulating evidence suggests that the mechanical and biochemical signals originating from cell-cell adhesion are critical for stem cell lineage specification. In this review, we focus on the role of cadherin mediated signaling in development and stem cell differentiation, with emphasis on two well-known cadherins, cadherin-2 (CDH2) (N-cadherin) and cadherin-11 (CDH11) (OB-cadherin). We summarize the existing knowledge regarding the role of CDH2 and CDH11 during development and differentiation in vivo and in vitro. We also discuss engineering strategies to control stem cell fate decisions by fine-tuning the extent of cell-cell adhesion through surface chemistry and microtopology. These studies may be greatly facilitated by novel strategies that enable monitoring of stem cell specification in real time. We expect that better understanding of how intercellular adhesion signaling affects lineage specification may impact biomaterial and scaffold design to control stem cell fate decisions in three-dimensional context with potential implications for tissue engineering and regenerative medicine.
越来越多的证据表明,源自细胞 - 细胞粘附的机械和生化信号对于干细胞谱系特化至关重要。在本综述中,我们重点关注钙黏蛋白介导的信号在发育和干细胞分化中的作用,尤其着重于两种著名的钙黏蛋白,钙黏蛋白 - 2(CDH2)(N - 钙黏蛋白)和钙黏蛋白 - 11(CDH11)(OB - 钙黏蛋白)。我们总结了关于CDH2和CDH11在体内和体外发育及分化过程中作用的现有知识。我们还讨论了通过表面化学和微观拓扑结构微调细胞 - 细胞粘附程度来控制干细胞命运决定的工程策略。能够实时监测干细胞特化的新策略可能会极大地促进这些研究。我们期望对细胞间粘附信号如何影响谱系特化的更好理解,可能会影响生物材料和支架设计,从而在三维环境中控制干细胞命运决定,这对组织工程和再生医学具有潜在意义。