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球状蛋白中α-螺旋末端的结构:额外氢键的影响及其对螺旋形成的意义。

The structure of the ends of α-helices in globular proteins: effect of additional hydrogen bonds and implications for helix formation.

机构信息

Institute of Biomedical and Life Sciences, University of Glasgow, Glasgow G12 8QQ, United Kingdom.

出版信息

Proteins. 2011 Mar;79(3):1010-9. doi: 10.1002/prot.22942. Epub 2011 Jan 5.

DOI:10.1002/prot.22942
PMID:21287629
Abstract

We prepared a set of about 2000 α-helices from a relational database of high-resolution three-dimensional structures of globular proteins, and identified additional main chain i ← i+3 hydrogen bonds at the ends of the helices (i.e., where the hydrogen bonding potential is not fulfilled by canonical i ← i+4 hydrogen bonds). About one-third of α-helices have such additional hydrogen bonds at the N-terminus, and more than half do so at the C-terminus. Although many of these additional hydrogen bonds at the C-terminus are associated with Schellman loops, the majority are not. We compared the dihedral angles at the termini of α-helices having or lacking the additional hydrogen bonds. Significant differences were found, especially at the C-terminus, where the dihedral angles at positions C2 and C1 in the absence of additional hydrogen bonds deviate substantially from those occurring within the α-helix. Using a novel approach we show how the structure of the C-terminus of the α-helix can emerge from that of constituent overlapping α-turns and β-turns, which individually show a variation in dihedral angles at different positions. We have also considered the direction of propagation of the α-helix using this approach. If one assumes that helices start as a single α-turn and grow by successive addition of further α-turns, the paths for growth in the N → C and C → N directions differ in a way that suggests that extension in the C → N direction is favored.

摘要

我们从高分辨率球状蛋白三维结构的关系数据库中准备了大约 2000 个α-螺旋,并在螺旋的末端(即氢键的潜在作用没有被经典的 i ← i+4 氢键满足的地方)识别出了其他的主链 i ← i+3 氢键。大约三分之一的α-螺旋在 N 端具有这种额外的氢键,超过一半的在 C 端具有。尽管这些 C 端的额外氢键中的许多与 Schellman 环有关,但大多数并非如此。我们比较了具有或不具有额外氢键的α-螺旋末端的二面角。发现了显著的差异,特别是在 C 端,在缺乏额外氢键的情况下,C2 和 C1 位置的二面角与α-螺旋内发生的情况有很大的偏离。我们使用一种新方法展示了如何从组成重叠的α-转角和β-转角的结构中出现α-螺旋的 C 端的结构,这些转角各自在不同位置表现出二面角的变化。我们还考虑了使用这种方法的α-螺旋的传播方向。如果假设螺旋从单个α-转角开始,并通过连续添加更多的α-转角来生长,那么在 N→C 和 C→N 方向上的生长路径会有所不同,这表明在 C→N 方向上的延伸更有利。

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