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内吞蛋白BAR结构域通过两种新发现的基于结构的机制驱动膜曲率。

Endophilin BAR domain drives membrane curvature by two newly identified structure-based mechanisms.

作者信息

Masuda Michitaka, Takeda Soichi, Sone Manami, Ohki Takashi, Mori Hidezo, Kamioka Yuji, Mochizuki Naoki

机构信息

Department of Structural Analysis, National Cardiovascular Center Research Institute, Suita, Osaka, Japan.

出版信息

EMBO J. 2006 Jun 21;25(12):2889-97. doi: 10.1038/sj.emboj.7601176. Epub 2006 Jun 8.

Abstract

The crescent-shaped BAR (Bin/Amphiphysin/Rvs-homology) domain dimer is a versatile protein module that senses and generates positive membrane curvature. The BAR domain dimer of human endophilin-A1, solved at 3.1 A, has a unique structure consisting of a pair of helix-loop appendages sprouting out from the crescent. The appendage's short helices form a hydrophobic ridge, which runs across the concave surface at its center. Examining liposome binding and tubulation in vitro using purified BAR domain and its mutants indicated that the ridge penetrates into the membrane bilayer and enhances liposome tubulation. BAR domain-expressing cells exhibited marked plasma membrane tubulation in vivo. Furthermore, a swinging-arm mutant lost liposome tubulation activity yet retaining liposome binding. These data suggested that the rigid crescent dimer shape is crucial for the tubulation. We here propose that the BAR domain drives membrane curvature by coordinate action of the crescent's scaffold mechanism and the ridge's membrane insertion in addition to membrane binding via amino-terminal amphipathic helix.

摘要

新月形的BAR(Bin/Amphiphysin/Rvs同源)结构域二聚体是一种多功能蛋白质模块,可感知并产生正膜曲率。人内吞蛋白-A1的BAR结构域二聚体,其分辨率为3.1埃,具有独特的结构,由一对从新月形伸出的螺旋-环附属物组成。附属物的短螺旋形成一个疏水脊,该疏水脊在其中心穿过凹面。使用纯化的BAR结构域及其突变体在体外检查脂质体结合和微管形成表明,该脊穿透到膜双层中并增强脂质体微管形成。表达BAR结构域的细胞在体内表现出明显的质膜微管形成。此外,一个摇臂突变体失去了脂质体微管形成活性,但仍保留脂质体结合能力。这些数据表明,刚性的新月形二聚体形状对于微管形成至关重要。我们在此提出,除了通过氨基末端两亲性螺旋与膜结合外,BAR结构域还通过新月形的支架机制和脊的膜插入的协同作用来驱动膜曲率。

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