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红细胞膜骨架的解剖结构:未解之谜。

Anatomy of the red cell membrane skeleton: unanswered questions.

机构信息

Dana-Farber/Boston Children's Cancer and Blood Disorders Center, and Department of Medicine, Boston Children's Hospital, Boston, MA.

出版信息

Blood. 2016 Jan 14;127(2):187-99. doi: 10.1182/blood-2014-12-512772. Epub 2015 Nov 4.

Abstract

The red cell membrane skeleton is a pseudohexagonal meshwork of spectrin, actin, protein 4.1R, ankyrin, and actin-associated proteins that laminates the inner membrane surface and attaches to the overlying lipid bilayer via band 3-containing multiprotein complexes at the ankyrin- and actin-binding ends of spectrin. The membrane skeleton strengthens the lipid bilayer and endows the membrane with the durability and flexibility to survive in the circulation. In the 36 years since the first primitive model of the red cell skeleton was proposed, many additional proteins have been discovered, and their structures and interactions have been defined. However, almost nothing is known of the skeleton's physiology, and myriad questions about its structure remain, including questions concerning the structure of spectrin in situ, the way spectrin and other proteins bind to actin, how the membrane is assembled, the dynamics of the skeleton when the membrane is deformed or perturbed by parasites, the role lipids play, and variations in membrane structure in unique regions like lipid rafts. This knowledge is important because the red cell membrane skeleton is the model for spectrin-based membrane skeletons in all cells, and because defects in the red cell membrane skeleton underlie multiple hemolytic anemias.

摘要

红细胞膜骨架是由血影蛋白、肌动蛋白、蛋白 4.1R、锚蛋白和肌动蛋白相关蛋白组成的拟六边形网格,它分层于内膜表面,并通过锚蛋白和肌动蛋白结合末端的含带 3 的多蛋白复合物附着在覆盖的脂质双层上。膜骨架增强了脂质双层的强度,并赋予膜耐久性和柔韧性,使其能够在循环中存活。自第一个原始红细胞骨架模型提出以来的 36 年中,已经发现了许多其他的蛋白质,并且已经确定了它们的结构和相互作用。然而,对于骨架的生理学几乎一无所知,其结构仍然存在无数问题,包括关于原位血影蛋白结构的问题、血影蛋白和其他蛋白质与肌动蛋白结合的方式、膜的组装方式、膜变形或受到寄生虫干扰时骨架的动力学、脂质的作用以及脂质筏等独特区域的膜结构的变化。这些知识很重要,因为红细胞膜骨架是所有细胞中基于血影蛋白的膜骨架的模型,并且因为红细胞膜骨架的缺陷是多种溶血性贫血的基础。

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