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内吞膜几何形状、稳定性和断裂的决定因素。

Determinants of endocytic membrane geometry, stability, and scission.

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720-3202, USA.

出版信息

Proc Natl Acad Sci U S A. 2011 Nov 1;108(44):E979-88. doi: 10.1073/pnas.1113413108. Epub 2011 Oct 17.

Abstract

During endocytic vesicle formation, distinct subdomains along the membrane invagination are specified by different proteins, which bend the membrane and drive scission. Bin-Amphiphysin-Rvs (BAR) and Fer-CIP4 homology-BAR (F-BAR) proteins can induce membrane curvature and have been suggested to facilitate membrane invagination and scission. Two F-BAR proteins, Syp1 and Bzz1, are found at budding yeast endocytic sites. Syp1 arrives early but departs from the endocytic site before formation of deep membrane invaginations and scission. Using genetic, spatiotemporal, and ultrastructural analyses, we demonstrate that Bzz1, the heterodimeric BAR domain protein Rvs161/167, actin polymerization, and the lipid phosphatase Sjl2 cooperate, each through a distinct mechanism, to induce membrane scission in yeast. Additionally, actin assembly and Rvs161/167 cooperate to drive formation of deep invaginations. Finally, we find that Bzz1, acting at the invagination base, stabilizes endocytic sites and functions with Rvs161/167, localized along the tubule, to achieve proper endocytic membrane geometry necessary for efficient scission. Together, our results reveal that dynamic interplay between a lipid phosphatase, actin assembly, and membrane-sculpting proteins leads to proper membrane shaping, tubule stabilization, and scission.

摘要

在胞吞小泡形成过程中,不同的蛋白质会在膜内陷的不同部位指定特定的亚域,这些蛋白质使膜弯曲并驱动分裂。Bin-Amphiphysin-Rvs(BAR)和Fer-CIP4 同源-BAR(F-BAR)蛋白可以诱导膜曲率,并被认为有助于膜内陷和分裂。两种 F-BAR 蛋白,Syp1 和 Bzz1,存在于酵母的胞吞部位。Syp1 先到达,但在深膜内陷和分裂形成之前离开胞吞部位。通过遗传、时空和超微结构分析,我们证明了 Bzz1、异二聚体 BAR 结构域蛋白 Rvs161/167、肌动蛋白聚合和脂质磷酸酶 Sjl2 合作,每种蛋白都通过独特的机制,在酵母中诱导膜分裂。此外,肌动蛋白组装和 Rvs161/167 合作驱动深内陷的形成。最后,我们发现 Bzz1 在凹陷基底处起作用,稳定胞吞部位,并与局部沿小管的 Rvs161/167 合作,以实现有效的分裂所必需的适当的胞吞膜几何形状。总之,我们的结果表明,脂质磷酸酶、肌动蛋白组装和膜成型蛋白之间的动态相互作用导致了适当的膜成型、小管稳定和分裂。

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