Tropomodulin1调节基质刚度诱导巨噬细胞的生物力学变化

Yajun Meng , Amannisa Tuersuntuoheti , Siyu Jiang , Jiayi Xie , Zejun Yue , Dingwen Xu , Xueyu Geng , Xiang Lian , Lide Xie , Lanping Amy Sung , Xifu Wang , Jing Zhou , Weijuan Yao
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摘要

单核细胞/巨噬细胞浸润在动脉粥样硬化的发生发展中起关键作用。动脉僵硬是心血管事件的一个不依赖胆固醇的危险因素。动脉硬度对巨噬细胞生物力学的调节及其潜在机制尚不清楚。我们分别制备了与健康血管和病变血管相对应的低刚度和高刚度聚丙烯酰胺凝胶。我们发现在硬基质上培养的巨噬细胞比在软基质上培养的巨噬细胞具有更高的刚性和迁移能力。一种肌动蛋白封盖蛋白,tropomodulin1 (Tmod1)在巨噬细胞和高硬度动脉中被僵硬基质上调。进一步分析表明,巨噬细胞中Tmod1的缺失完全或部分阻止了硬基质诱导的肌动蛋白聚合、细胞粘附和细胞扩散的变化。巨噬细胞中过表达Tmod1可增强肌动蛋白聚合、细胞黏附和在坚硬基质上的扩散。Tmod1参与了巨噬细胞在刚性基质上表达和局灶黏附形成的调控。最后,巨噬细胞中缺乏Tmod1延缓了高基质刚度血管中动脉粥样硬化斑块的形成。结果表明,Tmod1是巨噬细胞刚性和在刚性底物上迁移的关键调节因子。本研究将有助于我们了解动脉粥样硬化发生的生物力学机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tropomodulin1 regulates the biomechanical changes in macrophages induced by matrix stiffness

Tropomodulin1 regulates the biomechanical changes in macrophages induced by matrix stiffness
The monocyte/macrophage infiltration plays critical roles in the development of atherosclerosis. Arterial stiffness is a cholesterol-independent risk factor for cardiovascular events. The regulation of arterial stiffness on biomechanics of macrophages and its underlying mechanism remains unclear. We prepared polyacrylamide gels with low and high stiffness that corresponded to healthy and diseased blood vessels, respectively. We found that macrophages cultured on stiff matrix had increased rigidity and migration ability compared to those on soft matrix. An actin capping protein, tropomodulin1 (Tmod1) was upregulated in macrophages by stiff matrix and in arteries with high stiffness. Further analyses showed that deficiency of Tmod1 in macrophages completely or partially prevented the changes in actin polymerization, cell adhesion and cell spreading induced by stiff matrix. Overexpression of Tmod1 in macrophages enhanced actin polymerization, cell adhesion and spreading on stiff matrix. Tmod1 was involved in the regulation of vinculin expression and formation of focal adhesion in macrophages on stiff matrix. Finally, the deficiency of Tmod1 in macrophages retarded the formation of atherosclerotic plaques in blood vessels with high matrix stiffness. The results suggest that Tmod1 was a key regulator in macrophage rigidity and migration on stiff substrate. The present work will help us to understand the biomechanical mechanisms for the development of atherosclerosis.
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