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内皮细胞迁移中的机械转导

Mechanotransduction in endothelial cell migration.

作者信息

Li Song, Huang Ngan F, Hsu Steven

机构信息

Department of Bioengineering and Center for Functional Tissue Engineering, University of California-Berkeley, San Francisco/Berkeley, California 94720, USA.

出版信息

J Cell Biochem. 2005 Dec 15;96(6):1110-26. doi: 10.1002/jcb.20614.

Abstract

The migration of endothelial cells (ECs) plays an important role in vascular remodeling and regeneration. EC migration can be regulated by different mechanisms such as chemotaxis, haptotaxis, and mechanotaxis. This review will focus on fluid shear stress-induced mechanotransduction during EC migration. EC migration and mechanotransduction can be modulated by cytoskeleton, cell surface receptors such as integrins and proteoglycans, the chemical and physical properties of extracellular matrix (ECM) and cell-cell adhesions. The shear stress applied on the luminal surface of ECs can be sensed by cell membrane and associated receptor and transmitted throughout the cell to cell-ECM adhesions and cell-cell adhesions. As a result, shear stress induces directional migration of ECs by promoting lamellipodial protrusion and the formation of focal adhesions (FAs) at the front in the flow direction and the disassembly of FAs at the rear. Persistent EC migration in the flow direction can be driven by polarized activation of signaling molecules and the positive feedback loops constituted by Rho GTPases, cytoskeleton, and FAs at the leading edge. Furthermore, shear stress-induced EC migration can overcome the haptotaxis of ECs. Given the hemodynamic environment of the vascular system, mechanotransduction during EC migration has a significant impact on vascular development, angiogenesis, and vascular wound healing.

摘要

内皮细胞(ECs)的迁移在血管重塑和再生中起着重要作用。EC迁移可通过趋化性、趋触性和趋机械性等不同机制进行调节。本综述将聚焦于EC迁移过程中流体剪切应力诱导的机械转导。EC迁移和机械转导可受到细胞骨架、整合素和蛋白聚糖等细胞表面受体、细胞外基质(ECM)的化学和物理性质以及细胞间黏附的调节。施加在EC管腔表面的剪切应力可被细胞膜及相关受体感知,并传递至整个细胞,作用于细胞-ECM黏附和细胞间黏附。因此,剪切应力通过促进片状伪足的伸出以及在流动方向前端形成黏着斑(FAs),并使后端的FAs解体,从而诱导EC的定向迁移。信号分子的极化激活以及由前沿的Rho GTPases、细胞骨架和FAs构成的正反馈环可驱动EC在流动方向上持续迁移。此外,剪切应力诱导的EC迁移可克服EC的趋触性。鉴于血管系统的血流动力学环境,EC迁移过程中的机械转导对血管发育、血管生成和血管伤口愈合具有重大影响。

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