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理解螺旋肽在膜中取向的能量学。

Understanding the energetics of helical peptide orientation in membranes.

作者信息

Sengupta Durba, Meinhold Lars, Langosch Dieter, Ullmann G Matthias, Smith Jeremy C

机构信息

IWR-Computational Molecular Biophysics, University of Heidelberg, Heidelberg, Germany.

出版信息

Proteins. 2005 Mar 1;58(4):913-22. doi: 10.1002/prot.20383.

Abstract

Understanding the energetic factors determining the positioning and orientation of single-helical peptides in membranes is of fundamental interest in structural biology. Here, a simple 5-slab continuum dielectric model for the membrane is examined that distinguishes between the solvent, headgroup, and core regions. An analytical solution for the electrostatic solvation of a single dipole and an all-atom model of N-methylacetamide are used to demonstrate the effect of the dielectric boundaries in the system on peptide dipole orientation. The dipole orientation energy is shown to dominate the electrostatic solvation energy of a polyalanine helix in the membrane. With an additional surface-area-dependent term to account for the cavity formation in the aqueous region, the continuum electrostatics description is used to examine several helical peptides, the atoms of which are explicitly represented with a molecular mechanics force field. The experimentally determined tilt angles of a number of peptides of alternating alanine and leucine residues, and of glycophorin and melittin, are accurately reproduced by the model. The factors determining the tilt angles and their fluctuations are analyzed. The tilt angles of the simpler peptides are found to increase approximately linearly with peptide length; this effect is also rationalized. The analysis and model presented here provide a step toward the prediction of helical membrane protein structure.

摘要

理解决定单螺旋肽在膜中定位和取向的能量因素是结构生物学的基本兴趣所在。在此,研究了一种简单的用于膜的五层连续介质电介质模型,该模型区分了溶剂、头基和核心区域。使用单个偶极子的静电溶剂化解析解和N - 甲基乙酰胺的全原子模型来证明系统中电介质边界对肽偶极子取向的影响。偶极子取向能被证明在膜中聚丙氨酸螺旋的静电溶剂化能中占主导地位。通过一个额外的与表面积相关的项来考虑水相区域中的空穴形成,连续介质静电学描述被用于研究几种螺旋肽,其原子用分子力学力场明确表示。该模型准确再现了许多由丙氨酸和亮氨酸交替残基组成的肽以及血型糖蛋白和蜂毒素的实验测定倾斜角。分析了决定倾斜角及其波动的因素。发现较简单肽的倾斜角随肽长度近似线性增加;这种效应也得到了合理的解释。此处提出的分析和模型为预测螺旋膜蛋白结构迈出了一步。

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