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血管扩张刺激磷蛋白通过调节细丝锚定来控制肌动蛋白动力学。

VASP governs actin dynamics by modulating filament anchoring.

作者信息

Trichet Léa, Campàs Otger, Sykes Cécile, Plastino Julie

机构信息

Laboratoire Physicochimie Curie UMR 168 CNRS, Institut Curie-Section de Recherche, 11 rue Pierre et Marie Curie, 75231 Paris, cedex 05, France.

出版信息

Biophys J. 2007 Feb 1;92(3):1081-9. doi: 10.1529/biophysj.106.091884. Epub 2006 Nov 10.

Abstract

Actin filament dynamics at the cell membrane are important for cell-matrix and cell-cell adhesions and the protrusion of the leading edge. Since actin filaments must be connected to the cell membrane to exert forces but must also detach from the membrane to allow it to move and evolve, the balance between actin filament tethering and detachment at adhesion sites and the leading edge is key for cell shape changes and motility. How this fine tuning is performed in cells remains an open question, but possible candidates are the Drosophila enabled/vasodilator-stimulated phosphoprotein (Ena/VASP) family of proteins, which localize to dynamic actin structures in the cell. Here we study VASP-mediated actin-related proteins 2/3 (Arp2/3) complex-dependent actin dynamics using a substrate that mimics the fluid properties of the cell membrane: an oil-water interface. We show evidence that polymerization activators undergo diffusion and convection on the fluid surface, due to continual attachment and detachment to the actin network. These dynamics are enhanced in the presence of VASP, and we observe cycles of catastrophic detachment of the actin network from the surface, resulting in stop-and-go motion. These results point to a role for VASP in the modulation of filament anchoring, with implications for actin dynamics at cell adhesions and at the leading edge of the cell.

摘要

细胞膜上的肌动蛋白丝动力学对于细胞与基质及细胞间的黏附以及前沿的突出至关重要。由于肌动蛋白丝必须连接到细胞膜以施加力,但也必须从膜上脱离以使其能够移动和演化,因此黏附位点和前沿处肌动蛋白丝的拴系与脱离之间的平衡是细胞形状变化和运动性的关键。细胞中如何进行这种微调仍是一个悬而未决的问题,但可能的候选者是果蝇的 Enabled/血管舒张剂刺激磷蛋白(Ena/VASP)家族蛋白,它们定位于细胞中的动态肌动蛋白结构。在这里,我们使用模拟细胞膜流体特性的底物:油水界面,研究VASP介导的肌动蛋白相关蛋白2/3(Arp2/3)复合物依赖性肌动蛋白动力学。我们证明,由于与肌动蛋白网络的持续附着和脱离,聚合激活剂在流体表面经历扩散和对流。在VASP存在的情况下,这些动力学增强,并且我们观察到肌动蛋白网络从表面灾难性脱离的循环,导致走走停停的运动。这些结果表明VASP在调节丝锚定中起作用,这对细胞黏附处和细胞前沿的肌动蛋白动力学有影响。

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