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肌球蛋白-X 沿微丝运输 VE-钙黏蛋白,从而允许早期内皮细胞-细胞接触的形成。

The motor protein myosin-X transports VE-cadherin along filopodia to allow the formation of early endothelial cell-cell contacts.

机构信息

iRTSV, APV, INSERM U882, CEA-Grenoble, 17 Rue des Martyrs, 38054 Grenoble Cedex 9, France.

出版信息

Mol Cell Biol. 2010 Apr;30(7):1703-17. doi: 10.1128/MCB.01226-09. Epub 2010 Feb 1.

Abstract

Vascular endothelium (VE), the monolayer of endothelial cells that lines the vascular tree, undergoes damage at the basis of some vascular diseases. Its integrity is maintained by VE-cadherin, an adhesive receptor localized at cell-cell junctions. Here, we show that VE-cadherin is also located at the tip and along filopodia in sparse or subconfluent endothelial cells. We observed that VE-cadherin navigates along intrafilopodial actin filaments. We found that the actin motor protein myosin-X is colocalized and moves synchronously with filopodial VE-cadherin. Immunoprecipitation and pulldown assays confirmed that myosin-X is directly associated with the VE-cadherin complex. Furthermore, expression of a dominant-negative mutant of myosin-X revealed that myosin-X is required for VE-cadherin export to cell edges and filopodia. These features indicate that myosin-X establishes a link between the actin cytoskeleton and VE-cadherin, thereby allowing VE-cadherin transportation along intrafilopodial actin cables. In conclusion, we propose that VE-cadherin trafficking along filopodia using myosin-X motor protein is a prerequisite for cell-cell junction formation. This mechanism may have functional consequences for endothelium repair in pathological settings.

摘要

血管内皮细胞(VE)是构成血管壁的单层内皮细胞,在某些血管疾病的基础上会受到损伤。其完整性由位于细胞连接处的黏附受体 VE-钙黏蛋白维持。在这里,我们发现 VE-钙黏蛋白也位于稀疏或亚融合的内皮细胞的尖端和丝状伪足上。我们观察到 VE-钙黏蛋白沿着丝状伪足内的肌动蛋白丝导航。我们发现肌球蛋白-X 这个肌动蛋白马达蛋白与丝状伪足 VE-钙黏蛋白共定位并同步运动。免疫沉淀和下拉实验证实肌球蛋白-X 直接与 VE-钙黏蛋白复合物相关联。此外,表达肌球蛋白-X 的显性负突变体表明,肌球蛋白-X 对于 VE-钙黏蛋白向细胞边缘和丝状伪足的输出是必需的。这些特征表明,肌球蛋白-X 在肌动蛋白细胞骨架和 VE-钙黏蛋白之间建立了联系,从而允许 VE-钙黏蛋白沿着丝状伪足内的肌动蛋白电缆运输。总之,我们提出 VE-钙黏蛋白通过肌球蛋白-X 运动蛋白沿丝状伪足运输是细胞-细胞连接形成的前提。该机制可能对病理状态下的内皮细胞修复具有功能意义。

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