Materials Science and Engineering, Monash University, Clayton, VIC, 3800, Australia.
Australian Institute for Bioengineering and Nanotechnology, University of Queensland, St Lucia, 3072, Australia.
Nat Commun. 2018 Jan 17;9(1):257. doi: 10.1038/s41467-017-02486-0.
Mechanotransduction is a strong driver of mesenchymal stem cell (MSC) fate. In vitro, variations in matrix mechanics invoke changes in MSC proliferation, migration and differentiation. However, when incorporating MSCs within injectable, inherently soft hydrogels, this dominance over MSC response substantially limits our ability to couple the ease of application of hydrogels with efficiently directed MSC differentiation, especially in the case of bone generation. Here, we identify differential miRNA expression in response to varying hydrogel stiffness and RhoA activity. We show that modulation of miR-100-5p and miR-143-3p can be used to bias MSC fate and provide mechanistic insight by demonstrating convergence on mTOR signalling. By modulating these mechanosensitive miRNAs, we can enhance osteogenesis in a soft 3D hydrogel. The outcomes of this study provide new understanding of the mechanisms regulating MSC mechanotransduction and differentiation, but also a novel strategy with which to drive MSC fate and significantly impact MSC-based tissue-engineering applications.
力学转导是间充质干细胞(MSC)命运的强大驱动因素。在体外,基质力学的变化会引起 MSC 的增殖、迁移和分化的改变。然而,当将 MSCs 整合到可注射的、固有柔软的水凝胶中时,这种对 MSC 反应的主导性大大限制了我们将水凝胶易于应用与高效定向 MSC 分化相结合的能力,特别是在生成骨的情况下。在这里,我们确定了对不同水凝胶硬度和 RhoA 活性的响应的差异 miRNA 表达。我们表明,miR-100-5p 和 miR-143-3p 的调节可用于偏向 MSC 命运,并通过证明对 mTOR 信号的收敛来提供机制见解。通过调节这些机械敏感的 miRNA,我们可以增强软 3D 水凝胶中的成骨作用。这项研究的结果提供了对调节 MSC 力学转导和分化的机制的新理解,但也是一种新的策略,可以驱动 MSC 命运并显著影响基于 MSC 的组织工程应用。