Li Yan, Zhong Zhenyu, Xu Cunjing, Wu Xiaodan, Li Jiaqi, Tao Weiyong, Wang Jianglin, Du Yingying, Zhang Shengmin
Advanced Biomaterials and Tissue Engineering Center, Huazhong University of Science and Technology, Wuhan430074, China.
Department of Biomedical Engineering, Huazhong University of Science and Technology, Wuhan430074, China.
Natl Sci Rev. 2023 Jun 1;10(8):nwad165. doi: 10.1093/nsr/nwad165. eCollection 2023 Aug.
Biophysical cues of the cellular microenvironment tremendously influence cell behavior by mechanotransduction. However, it is still unclear how cells sense and transduce the mechanical signals from 3D geometry to regulate cell function. Here, the mechanotransduction of human mesenchymal stem cells (MSCs) triggered by 3D micropatterns and its effect on the paracrine of MSCs are systematically investigated. Our findings show that 3D micropattern force could influence the spatial reorganization of the cytoskeleton, leading to different local forces which mediate nucleus alteration such as orientation, morphology, expression of Lamin A/C and chromatin condensation. Specifically, in the triangular prism and cuboid micropatterns, the ordered F-actin fibers are distributed over and fully transmit compressive forces to the nucleus, which results in nuclear flattening and stretching of nuclear pores, thus enhancing the nuclear import of YES-associated protein (YAP). Furthermore, the activation of YAP significantly enhances the paracrine of MSCs and upregulates the secretion of angiogenic growth factors. In contrast, the fewer compressive forces on the nucleus in cylinder and cube micropatterns cause less YAP entering the nucleus. The skin repair experiment provides the first evidence that enhanced MSCs paracrine by 3D geometry significantly promotes tissue regeneration. The current study contributes to understanding the in-depth mechanisms of mechanical signals affecting cell function and provides inspiration for innovative design of biomaterials.
细胞微环境的生物物理线索通过机械转导极大地影响细胞行为。然而,细胞如何感知并转导来自三维几何结构的机械信号以调节细胞功能仍不清楚。在此,系统地研究了由三维微图案触发的人间充质干细胞(MSCs)的机械转导及其对MSCs旁分泌的影响。我们的研究结果表明,三维微图案力可影响细胞骨架的空间重组,导致不同的局部力,这些局部力介导细胞核的改变,如取向、形态、核纤层蛋白A/C的表达和染色质凝聚。具体而言,在三棱柱和长方体微图案中,有序的F-肌动蛋白纤维分布在细胞核上并将压缩力完全传递至细胞核,这导致细胞核扁平以及核孔拉伸,从而增强Yes相关蛋白(YAP)的核输入。此外,YAP的激活显著增强了MSCs的旁分泌并上调血管生成生长因子的分泌。相比之下,圆柱体和立方体微图案中细胞核上的压缩力较少,导致进入细胞核的YAP较少。皮肤修复实验首次证明,三维几何结构增强的MSCs旁分泌显著促进组织再生。当前的研究有助于理解影响细胞功能的机械信号的深入机制,并为生物材料的创新设计提供灵感。