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盘基网柄菌中细胞黏附、丝状伪足形成和趋化作用对血管舒张刺激磷蛋白家族成员的需求。

Requirement of a vasodilator-stimulated phosphoprotein family member for cell adhesion, the formation of filopodia, and chemotaxis in dictyostelium.

作者信息

Han Young-Hoon, Chung Chang Y, Wessels Deborah, Stephens Stephen, Titus Margaret A, Soll David R, Firtel Richard A

机构信息

Section of Cell and Developmental Biology, Division of Biological Sciences, Center for Molecular Genetics, University of California-San Diego, 9500 Gilman Drive, La Jolla, California 92093-0634, USA.

出版信息

J Biol Chem. 2002 Dec 20;277(51):49877-87. doi: 10.1074/jbc.M209107200. Epub 2002 Oct 17.

Abstract

We have examined the function of a member of the vasodilator-stimulated phosphoprotein family of proteins (DdVASP) in Dictyostelium. Ddvasp null cells lack filopodia, whereas targeting DdVASP to the plasma membrane with a myristoyl tag results in a significant increase in filopodia. The proline-rich domain-Ena/VASP homology 2 structure is required for both actin polymerization activity and filopodia formation. Ddvasp null cells exhibit a chemotaxis defect, which appears to be due to a defect in the ability of the cells to properly adhere to the substratum and to suppress lateral pseudopod extension. We demonstrate that during chemotaxis, the anterior approximately 50% of the cell lifts from the substratum and remains elevated for up to 1 min. These defects lead to a significant decrease in chemotaxis efficiency. DdVASP localizes to the leading edge in migrating cells and to the tips of filopodia. In addition, Ddvasp null cells have a defect in particle adhesion but internalize particles normally. Our results provide new insights into the function of DdVASP in controlling the actin cytoskeleton during chemotaxis and filopodia formation.

摘要

我们研究了盘基网柄菌中血管舒张刺激磷蛋白家族的一个成员(DdVASP)的功能。Ddvasp基因缺失的细胞缺乏丝状伪足,而用豆蔻酰标签将DdVASP靶向质膜会导致丝状伪足显著增加。富含脯氨酸的结构域-Ena/VASP同源结构域2对于肌动蛋白聚合活性和丝状伪足形成都是必需的。Ddvasp基因缺失的细胞表现出趋化性缺陷,这似乎是由于细胞正确粘附于基质以及抑制侧向伪足延伸的能力存在缺陷所致。我们证明,在趋化过程中,细胞前部约50%会从基质上抬起并保持抬起状态长达1分钟。这些缺陷导致趋化效率显著降低。DdVASP定位于迁移细胞的前沿和丝状伪足的尖端。此外,Ddvasp基因缺失的细胞在颗粒粘附方面存在缺陷,但颗粒内化正常。我们的结果为DdVASP在趋化和丝状伪足形成过程中控制肌动蛋白细胞骨架的功能提供了新的见解。

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