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Directing stem cell fate on hydrogel substrates by controlling cell geometry, matrix mechanics and adhesion ligand composition

机译:通过控制细胞的几何形状,基质力学和粘附配体组成,指导干细胞在水凝胶基质上的命运

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There is a dynamic relationship between physical and biochemical signals presented in the stem cell microenvironment to guide cell fate determination. Model systems that modulate cell geometry, substrate stiffness or matrix composition have proved useful in exploring how these signals influence stem cell fate. However, the interplay between these physical and biochemical cues during differentiation remains unclear. Here, we demonstrate a microengineering strategy to vary single cell geometry and the composition of adhesion ligands - on substrates that approximate the mechanical properties of soft tissues - to study adipogenesis and neurogenesis in adherent mesenchymal stem cells. Cells cultured in small circular islands show elevated expression of adipogenesis markers while cells that spread in anisotropic geometries tend to express elevated neurogenic markers. Arraying different combinations of matrix protein in a myriad of 2D and pseudo-3D geometries reveals optimal microenvironments for controlling the differentiation of stem cells to these "soft" lineages without the use of media supplements.
机译:在干细胞微环境中呈现的物理和生化信号之间存在动态关系,以指导细胞命运的确定。事实证明,调节细胞几何结构,基质刚度或基质组成的模型系统在探索这些信号如何影响干细胞命运方面非常有用。然而,分化过程中这些物理和生化线索之间的相互作用仍然不清楚。在这里,我们展示了一种微工程策略,可改变单细胞的几何形状和粘附配体的组成-在近似于软组织机械特性的基质上-研究粘附的间充质干细胞的脂肪形成和神经发生。在圆形小岛上培养的细胞显示出脂肪生成标记物的表达升高,而在各向异性几何形状中扩散的细胞则倾向于表达升高的神经源性标记物。在无数的2D和伪3D几何形状中排列基质蛋白的不同组合,揭示了控制干细胞向这些“软”系分化的最佳微环境,而无需使用培养基补充剂。

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