Department of Biomedical Engineering, Orthopedics University of Wisconsin, Madison, Wisconsin 53705, USA.
Department of Biomedical Rehabilitation, and Material Science University of Wisconsin, Madison, Wisconsin 53705, USA.
ACS Chem Biol. 2014 Jan 17;9(1):45-56. doi: 10.1021/cb400801m. Epub 2014 Jan 3.
Understanding the processes by which stem cells give rise to de novo tissues is an active focus of stem cell biology and bioengineering disciplines. Instructive morphogenic cues surrounding the stem cell during morphogenesis create what is referred to as the stem cell microenvironment. An emerging paradigm in stem cell bioengineering involves "biologically driven assembly," in which stem cells are encouraged to largely define their own morphogenesis processes. However, even in the case of biologically driven assembly, stem cells do not act alone. The properties of the surrounding microenvironment can be critical regulators of cell fate. Stem cell-material interactions are among the most well-characterized microenvironmental effectors of stem cell fate and establish a signaling "context" that can define the mode of influence for morphogenic cues. Here we describe illustrative examples of cell-material interactions that occur during in vitro stem cell studies, with an emphasis on how cell-material interactions create instructive contexts for stem cell differentiation and morphogenesis.
了解干细胞产生新组织的过程是干细胞生物学和生物工程学科的一个活跃焦点。在形态发生过程中围绕干细胞的有指导作用的形态发生线索创造了所谓的干细胞微环境。干细胞生物工程中的一个新兴范例涉及“生物驱动组装”,其中鼓励干细胞在很大程度上定义自己的形态发生过程。然而,即使在生物驱动组装的情况下,干细胞也不是单独作用的。周围微环境的特性可能是细胞命运的关键调节剂。干细胞-材料相互作用是最具特征性的干细胞命运的微环境效应子之一,并建立了一个信号“上下文”,可以定义形态发生线索的影响模式。在这里,我们描述了在体外干细胞研究中发生的细胞-材料相互作用的说明性示例,重点介绍了细胞-材料相互作用如何为干细胞分化和形态发生创造有指导意义的环境。