Department of Materials, Imperial College London, London, UK.
Eur Cell Mater. 2009 Sep 21;18:1-13; discussion 13-4. doi: 10.22203/ecm.v018a01.
Embryonic stem cells (ESC) are both a potential source of cells for tissue replacement therapies and an accessible tool to model early embryonic development. Chemical factors such as soluble growth factors and insoluble components of the extracellular matrix are known to affect the differentiation of murine ESCs. However, there is also evidence to suggest that undifferentiated cells can both sense the mechanical properties of their environment and differentiate accordingly. By growing ESCs on flexible polydimethylsiloxane substrates with varying stiffness, we tested the hypothesis that substrate stiffness can influence ESC differentiation. While cell attachment was unaffected by the stiffness of the growth substrate, cell spreading and cell growth were all increased as a function of substrate stiffness. Similarly, several genes expressed in the primitive streak during gastrulation and implicated in early mesendoderm differentiation, such as Brachyury, Mixl1 and Eomes, were upregulated in cell cultures on stiffer compared to softer substrates. Finally, we demonstrated that osteogenic differentiation of ESCs was enhanced on stiff substrates compared to soft substrates, illustrating that the mechanical environment can play a role in both early and terminal ESC differentiation. Our results suggest a fundamental role for mechanosensing in mammalian development and illustrate that the mechanical environment should be taken into consideration when engineering implantable scaffolds or when producing therapeutically relevant cell populations in vitro.
胚胎干细胞(ESC)既是组织替代治疗的潜在细胞来源,也是模拟早期胚胎发育的有效工具。已知可溶性生长因子和细胞外基质的不溶性成分等化学因素会影响鼠 ESC 的分化。然而,也有证据表明,未分化的细胞可以感知其环境的机械特性并相应地分化。通过在具有不同硬度的柔性聚二甲基硅氧烷(PDMS)基底上培养 ESC,我们检验了以下假设:基底硬度会影响 ESC 分化。尽管细胞黏附不受生长基底硬度的影响,但细胞铺展和细胞生长都随基底硬度的增加而增加。同样,在更硬的基底上培养时,原始条纹中表达的几种基因被上调,这些基因在原肠胚形成期间表达,并与早期中胚层分化有关,例如 Brachyury、Mixl1 和 Eomes。最后,我们证明与软基底相比,硬基底能增强 ESC 的成骨分化,这表明机械环境在 ESC 的早期和终末分化中都起着重要作用。我们的结果表明机械感受在哺乳动物发育中具有基础性作用,并说明了在设计可植入支架或体外生成治疗相关细胞群体时,应考虑机械环境。