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ABC转运蛋白的运动结构域。结构能告诉我们什么?

The motor domains of ABC-transporters. What can structures tell us?

作者信息

Oswald Christine, Holland I Barry, Schmitt Lutz

机构信息

Institute of Biochemistry, Heinrich Heine University Duesseldorf, Universitaetsstr. 1, 40225, Duesseldorf, Germanye.

出版信息

Naunyn Schmiedebergs Arch Pharmacol. 2006 Mar;372(6):385-99. doi: 10.1007/s00210-005-0031-4. Epub 2006 Mar 16.

Abstract

The transport of substrates across a cellular membrane is a vitally important biological function essential for cell survival. ATP-binding cassette (ABC) transporters constitute one of the largest subfamilies of membrane proteins, accomplishing this task. Mutations in genes encoding for ABC transporters cause different diseases, for example, Adrenoleukodystrophy, Stargardt disease or Cystic Fibrosis. Furthermore, some ABC transporters are responsible for multidrug resistance, presenting a major obstacle in modern cancer chemotherapy. In order to translocate the enormous variety of substrates, ranging from ions, nutrients, small peptides to large toxins, different ABC-transporters utilize the energy gained from ATP binding and hydrolysis. The ATP binding cassette, also called the motor domain of ABC transporters, is highly conserved among all ABC transporters. The ability to purify this domain rather easily presents a perfect possibility to investigate the mechanism of ATP hydrolysis, thus providing us with a detailed picture of this process. Recently, many crystal structures of the ATP-binding domain and the full-length structures of two ABC transporters have been solved. Combining these structural data, we have now the opportunity to analyze the hydrolysis event on a molecular level. This review provides an overview of the structural investigations of the ATP-binding domains, highlighting molecular changes upon ATP binding and hydrolysis.

摘要

底物跨细胞膜的转运是细胞生存所必需的极其重要的生物学功能。ATP结合盒(ABC)转运蛋白是膜蛋白中最大的亚家族之一,承担着这项任务。编码ABC转运蛋白的基因突变会导致不同的疾病,例如肾上腺脑白质营养不良、斯塔加特病或囊性纤维化。此外,一些ABC转运蛋白与多药耐药性有关,这是现代癌症化疗中的一个主要障碍。为了转运种类繁多的底物,从离子、营养物质、小肽到大型毒素,不同的ABC转运蛋白利用ATP结合和水解所获得的能量。ATP结合盒,也称为ABC转运蛋白的马达结构域,在所有ABC转运蛋白中高度保守。相对容易地纯化该结构域为研究ATP水解机制提供了绝佳机会,从而让我们详细了解这一过程。最近,已经解析了ATP结合结构域的许多晶体结构以及两种ABC转运蛋白的全长结构。结合这些结构数据,我们现在有机会在分子水平上分析水解事件。本综述概述了ATP结合结构域的结构研究,重点介绍了ATP结合和水解时的分子变化。

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