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膜裂变的几何学

Geometry of membrane fission.

作者信息

Frolov Vadim A, Escalada Artur, Akimov Sergey A, Shnyrova Anna V

机构信息

Biophysics Unit (CSIC, UPV/EHU) and Department of Biochemistry and Molecular Biology, University of the Basque Country, Leioa, Spain; IKERBASQUE, Basque Foundation for Science, Bilbao, Spain.

Biophysics Unit (CSIC, UPV/EHU) and Department of Biochemistry and Molecular Biology, University of the Basque Country, Leioa, Spain.

出版信息

Chem Phys Lipids. 2015 Jan;185:129-40. doi: 10.1016/j.chemphyslip.2014.07.006. Epub 2014 Jul 22.

Abstract

Cellular membranes define the functional geometry of intracellular space. Formation of new membrane compartments and maintenance of complex organelles require division and disconnection of cellular membranes, a process termed membrane fission. Peripheral membrane proteins generally control membrane remodeling during fission. Local membrane stresses, reflecting molecular geometry of membrane-interacting parts of these proteins, sum up to produce the key membrane geometries of fission: the saddle-shaped neck and hour-glass hemifission intermediate. Here, we review the fundamental principles behind the translation of molecular geometry into membrane shape and topology during fission. We emphasize the central role the membrane insertion of specialized protein domains plays in orchestrating fission in vitro and in cells. We further compare individual to synergistic action of the membrane insertion during fission mediated by individual protein species, proteins complexes or membrane domains. Finally, we describe how local geometry of fission intermediates defines the functional design of the protein complexes catalyzing fission of cellular membranes.

摘要

细胞膜界定了细胞内空间的功能几何学。新膜区室的形成以及复杂细胞器的维持需要细胞膜的分裂和断开连接,这一过程称为膜裂变。外周膜蛋白通常在裂变过程中控制膜重塑。局部膜应力反映了这些蛋白与膜相互作用部分的分子几何学,这些应力总和起来产生了裂变的关键膜几何学:鞍形颈部和沙漏状半裂变中间体。在这里,我们回顾了在裂变过程中分子几何学转化为膜形状和拓扑结构背后的基本原理。我们强调了特殊蛋白结构域的膜插入在体外和细胞中协调裂变所起的核心作用。我们还比较了由单个蛋白种类、蛋白复合物或膜结构域介导的裂变过程中膜插入的个体作用与协同作用。最后,我们描述了裂变中间体的局部几何学如何定义催化细胞膜裂变的蛋白复合物的功能设计。

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