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跨膜α-螺旋桶作为易于处理的蛋白质设计靶点。

Membrane-spanning α-helical barrels as tractable protein-design targets.

作者信息

Niitsu Ai, Heal Jack W, Fauland Kerstin, Thomson Andrew R, Woolfson Derek N

机构信息

School of Chemistry, University of Bristol, Cantock's Close, Bristol BS8 1TS, UK.

School of Chemistry, University of Bristol, Cantock's Close, Bristol BS8 1TS, UK

出版信息

Philos Trans R Soc Lond B Biol Sci. 2017 Aug 5;372(1726). doi: 10.1098/rstb.2016.0213.

Abstract

The rational () design of membrane-spanning proteins lags behind that for water-soluble globular proteins. This is due to gaps in our knowledge of membrane-protein structure, and experimental difficulties in studying such proteins compared to water-soluble counterparts. One limiting factor is the small number of experimentally determined three-dimensional structures for transmembrane proteins. By contrast, many tens of thousands of globular protein structures provide a rich source of 'scaffolds' for protein design, and the means to garner sequence-to-structure relationships to guide the design process. The α-helical coiled coil is a protein-structure element found in both globular and membrane proteins, where it cements a variety of helix-helix interactions and helical bundles. Our deep understanding of coiled coils has enabled a large number of successful designs. For one class, the α-helical barrels-that is, symmetric bundles of five or more helices with central accessible channels-there are both water-soluble and membrane-spanning examples. Recent computational designs of water-soluble α-helical barrels with five to seven helices have advanced the design field considerably. Here we identify and classify analogous and more complicated membrane-spanning α-helical barrels from the Protein Data Bank. These provide tantalizing but tractable targets for protein engineering and protein design.This article is part of the themed issue 'Membrane pores: from structure and assembly, to medicine and technology'.

摘要

跨膜蛋白的合理设计落后于水溶性球状蛋白。这是由于我们对膜蛋白结构的认识存在差距,以及与水溶性对应物相比,研究此类蛋白存在实验困难。一个限制因素是跨膜蛋白通过实验确定的三维结构数量较少。相比之下,数以万计的球状蛋白结构为蛋白质设计提供了丰富的“支架”来源,以及获取序列与结构关系以指导设计过程的方法。α-螺旋卷曲螺旋是一种在球状蛋白和膜蛋白中都存在的蛋白质结构元件,它巩固了各种螺旋-螺旋相互作用和螺旋束。我们对卷曲螺旋的深入理解促成了大量成功的设计。对于一类α-螺旋桶,即由五个或更多螺旋组成的对称束且具有中央可及通道,既有水溶性的例子,也有跨膜的例子。最近对具有五到七个螺旋的水溶性α-螺旋桶的计算设计极大地推动了设计领域的发展。在这里,我们从蛋白质数据库中识别并分类类似的以及更复杂的跨膜α-螺旋桶。这些为蛋白质工程和蛋白质设计提供了诱人但易于处理的目标。本文是主题为“膜孔:从结构与组装到医学与技术”特刊的一部分。

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本文引用的文献

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Structural Studies of G Protein-Coupled Receptors.G蛋白偶联受体的结构研究
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