School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou, 450001, China.
National Center for International Joint Research of Micro-Nano Moulding Technology, Zhengzhou University, Zhengzhou, 450001, China.
Adv Healthc Mater. 2023 Nov;12(29):e2300326. doi: 10.1002/adhm.202300326. Epub 2023 Sep 10.
Biomechanical stimuli derived from the extracellular matrix (ECM) extremely tune stem cell fate through 3D and spatiotemporal changes in vivo. The matrix stiffness is a crucial factor during bone tissue development. However, most in vitro models to study the osteogenesis of mesenchymal stem cells (MSCs) are static or stiffening in a 2D environment. Here, a dynamic and controllable stiffening 3D biomimetic model is created to regulate the osteogenic differentiation of MSCs with a dual-functional gelatin macromer that can generate a double-network hydrogel by sequential enzymatic and light-triggered crosslinking reactions. The findings show that these dynamic hydrogels allowed cells to spread and expand prior to the secondary crosslinking and to sense high stiffness after stiffening. The MSCs in the dynamic hydrogels, especially the hydrogel stiffened at the late period, present significantly elevated osteogenic ECM secretion, gene expression, and nuclear localization of Yes-associated protein (YAP) and transcriptional coactivator with PDZ-binding motif (TAZ). In vivo evaluation of animal experiments further indicates that the enhancement of dynamic stiffening on osteogenesis of MSCs substantially promotes bone remodeling. Consequently, this work reveals that the 3D dynamic stiffening microenvironment as a critical biophysical cue not only mediates the stem cell fate in vitro, but also augments bone restoration in vivo.
细胞外基质(ECM)产生的生物力学刺激通过体内三维和时空变化极大地调节干细胞命运。基质硬度是骨组织发育过程中的一个关键因素。然而,大多数用于研究间充质干细胞(MSCs)成骨的体外模型都是在二维环境中静态或逐渐变硬。在这里,创建了一种动态且可控制变硬的 3D 仿生模型,通过可进行顺序酶促和光引发交联反应的双功能明胶大分子来调节 MSC 的成骨分化。研究结果表明,这些动态水凝胶允许细胞在二次交联之前扩展和展开,并在变硬后感知到高硬度。动态水凝胶中的 MSC,特别是在后期变硬的水凝胶中,表现出显著增加的成骨细胞外基质分泌、基因表达以及 Yes 相关蛋白(YAP)和含 PDZ 结合基序的转录共激活因子(TAZ)的核定位。动物实验的体内评估进一步表明,MSC 成骨的动态变硬增强显著促进了骨重塑。因此,这项工作表明,3D 动态变硬微环境作为一个关键的生物物理线索,不仅可以调节体外干细胞命运,还可以增强体内骨修复。