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膜蛋白中的螺旋扰动有助于螺旋间相互作用以及在双分子层中实现最佳螺旋定位。

Helix perturbations in membrane proteins assist in inter-helical interactions and optimal helix positioning in the bilayer.

作者信息

Shelar Ashish, Bansal Manju

机构信息

Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, Karnataka, India.

Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, Karnataka, India.

出版信息

Biochim Biophys Acta. 2016 Nov;1858(11):2804-2817. doi: 10.1016/j.bbamem.2016.08.003. Epub 2016 Aug 10.

Abstract

Transmembrane (TM) helices in integral membrane proteins are primarily α-helical in structure. Here we analyze 1134 TM helices in 90 high resolution membrane proteins and find that apart from the widely prevalent α-helices, TM regions also contain stretches of 3 (3 to 8 residues) and π-helices (5 to 19 residues) with distinct sequence signatures. The various helix perturbations in TM regions comprise of helices with kinked geometry, as well as those with an interspersed 3/π-helical fragment and show high occurrence in a few membrane proteins. Proline is frequently present at sites of these perturbations, but it is neither a necessary nor a sufficient requirement. Helix perturbations are also conserved within a family of membrane proteins despite low sequence identity in the perturbed region. Furthermore, a perturbation influences the geometry of the TM helix, mediates inter-helical interactions within and across protein chains and avoids hydrophobic mismatch of the helix termini with the bilayer. An analysis of π-helices in the TM regions of the heme copper oxidase superfamily shows that interspersed π-helices can vary in length from 6 to 19 amino acids or be entirely absent, depending upon the protein function. The results presented here would be helpful for prediction of 3 and π-helices in TM regions and can assist the computational design of membrane proteins.

摘要

整合膜蛋白中的跨膜(TM)螺旋主要呈α螺旋结构。在此,我们分析了90种高分辨率膜蛋白中的1134个TM螺旋,发现除了广泛存在的α螺旋外,TM区域还包含3个(3至8个残基)片段和π螺旋(5至19个残基),它们具有独特的序列特征。TM区域中的各种螺旋扰动包括呈扭结几何形状的螺旋,以及那些穿插有3/π螺旋片段的螺旋,并且在一些膜蛋白中出现频率较高。脯氨酸经常出现在这些扰动位点,但它既不是必要条件也不是充分条件。尽管扰动区域的序列同一性较低,但螺旋扰动在膜蛋白家族中也是保守的。此外,一种扰动会影响TM螺旋的几何形状,介导蛋白质链内和跨蛋白质链的螺旋间相互作用,并避免螺旋末端与双层膜之间的疏水错配。对血红素铜氧化酶超家族TM区域中π螺旋的分析表明,穿插的π螺旋长度可以从6到19个氨基酸不等,或者完全不存在,这取决于蛋白质的功能。本文给出的结果将有助于预测TM区域中的3螺旋和π螺旋,并可协助膜蛋白的计算设计。

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