Bai Mingru, Zhang Zhaowei, Chen Huiyu, Liu Xiaoyu, Xie Jing
State Key Laboratory of Oral Diseases & National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, China.
Department of Endodontics, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, China.
Regen Biomater. 2022 Dec 10;10:rbac100. doi: 10.1093/rb/rbac100. eCollection 2023.
Mechanical stiffness is recognized as a key physical factor and directs cell function via a mechanotransduction process, from extracellular physical cues to intracellular signaling cascades that affect transcriptional activity. Cells continually receive mechanical signals from both the surrounding matrix and adjacent cells. However, how mechanical stiffness cue at cell-substrate interfaces coordinates cell-cell junctions in guiding mesenchymal stem cell behaviors is poorly understood. Here, polydimethylsiloxane substrates with different stiffnesses were used to study mechanosensation/transduction mechanisms in controlling odontogenic differentiation of dental papilla cells (DPCs). DPC phenotypes (morphology and differentiation) changed in response to the applied force derived from stiff substrates. Significantly, higher expression of paxillin on stiffer substrates promoted DPC dentinogenesis. Upon treatment with siRNA to knockdown paxillin, N-cadherin increased mainly in the cytomembrane at the area of cell-cell contacts, whereas β-catenin decreased in the nuclei. The result of a double luciferase reporter assay showed that stiffness promoted β-catenin binding to TCF, which could coactivate the target genes associated with odontogenic differentiation, as evidenced by bioinformatics analysis. Finally, we determined that the addition of a β-catenin inhibitor suppressed DPC mineralization in all the stiffness groups. Thus, our results indicated that a mechanotransduction process from cell-substrate interactions to cell-cell adhesions was required for DPC odontogenic differentiation under the stimulation of substrate stiffness. This finding suggests that stem cell fate specification under the stimulus of stiffness at the substrates is based on crosstalk between substrate interactions and adherens junctions, which provides an essential mechanism for cell-based tissue engineering.
机械刚度被认为是一个关键的物理因素,它通过机械转导过程指导细胞功能,从细胞外物理信号到影响转录活性的细胞内信号级联反应。细胞不断地从周围基质和相邻细胞接收机械信号。然而,细胞-底物界面处的机械刚度线索如何在引导间充质干细胞行为时协调细胞-细胞连接,目前尚不清楚。在这里,使用具有不同刚度的聚二甲基硅氧烷底物来研究控制牙乳头细胞(DPCs)牙源性分化的机械传感/转导机制。DPC的表型(形态和分化)因硬底物产生的作用力而发生变化。值得注意的是,在较硬底物上桩蛋白的高表达促进了DPC的牙本质形成。在用小干扰RNA敲低桩蛋白后,N-钙黏蛋白主要在细胞-细胞接触区域的细胞膜中增加,而β-连环蛋白在细胞核中减少。双荧光素酶报告基因检测结果表明,刚度促进了β-连环蛋白与TCF的结合,这可以共同激活与牙源性分化相关的靶基因,生物信息学分析证明了这一点。最后,我们确定添加β-连环蛋白抑制剂可抑制所有刚度组中的DPC矿化。因此,我们的结果表明,在底物刚度的刺激下,DPC牙源性分化需要从细胞-底物相互作用到细胞-细胞黏附的机械转导过程。这一发现表明,在底物刚度刺激下干细胞命运的决定是基于底物相互作用和黏附连接之间的相互作用,这为基于细胞的组织工程提供了一个重要机制。