α-连环蛋白和Piezo1通过细胞黏附介导细胞机械通讯。
α-Catenin and Piezo1 Mediate Cell Mechanical Communication via Cell Adhesions.
作者信息
Ouyang Mingxing, Zhang Qingyu, Zhu Yiming, Luo Mingzhi, Bu Bing, Deng Linhong
机构信息
Institute of Biomedical Engineering and Health Sciences, School of Medical and Health Engineering, Changzhou University, Changzhou 213164, China.
School of Pharmacy, Changzhou University, Changzhou 213164, China.
出版信息
Biology (Basel). 2024 May 19;13(5):357. doi: 10.3390/biology13050357.
Cell-to-cell distant mechanical communication has been demonstrated using in vitro and in vivo models. However, the molecular mechanisms underlying long-range cell mechanoresponsive interactions remain to be fully elucidated. This study further examined the roles of α-Catenin and Piezo1 in traction force-induced rapid branch assembly of airway smooth muscle (ASM) cells on a Matrigel hydrogel containing type I collagen. Our findings demonstrated that siRNA-mediated downregulation of α-Catenin or Piezo1 expression or chemical inhibition of Piezo1 activity significantly reduced both directional cell movement and branch assembly. Regarding the role of N-cadherin in regulating branch assembly but not directional migration, our results further confirmed that siRNA-mediated downregulation of α-Catenin expression caused a marked reduction in focal adhesion formation, as assessed by focal Paxillin and Integrin α5 localization. These observations imply that mechanosensitive α-Catenin is involved in both cell-cell and cell-matrix adhesions. Additionally, Piezo1 partially localized in focal adhesions, which was inhibited by siRNA-mediated downregulation of α-Catenin expression. This result provides insights into the Piezo1-mediated mechanosensing of traction force on a hydrogel. Collectively, our findings highlight the significance of α-Catenin in the regulation of cell-matrix interactions and provide a possible interpretation of Piezo1-mediated mechanosensing activity at focal adhesions during cell-cell mechanical communication.
细胞间远距离机械通讯已在体外和体内模型中得到证实。然而,远距离细胞机械反应性相互作用背后的分子机制仍有待充分阐明。本研究进一步探讨了α-连环蛋白和Piezo1在含有I型胶原蛋白的基质胶水凝胶上,牵引力诱导的气道平滑肌(ASM)细胞快速分支组装中的作用。我们的研究结果表明,siRNA介导的α-连环蛋白或Piezo1表达下调,或Piezo1活性的化学抑制,均显著降低了细胞的定向运动和分支组装。关于N-钙黏蛋白在调节分支组装而非定向迁移中的作用,我们的结果进一步证实,siRNA介导的α-连环蛋白表达下调导致粘着斑形成显著减少,这通过粘着斑桩蛋白和整合素α5的定位来评估。这些观察结果表明,机械敏感的α-连环蛋白参与了细胞间和细胞与基质的粘附。此外,Piezo1部分定位于粘着斑,siRNA介导的α-连环蛋白表达下调可抑制这一定位。该结果为Piezo1介导的水凝胶上牵引力的机械传感提供了见解。总的来说,我们的研究结果突出了α-连环蛋白在调节细胞与基质相互作用中的重要性,并为细胞间机械通讯过程中粘着斑处Piezo1介导的机械传感活性提供了一种可能的解释。