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环-螺旋相互作用在稳定四螺旋束蛋白中的作用。

Role of loop-helix interactions in stabilizing four-helix bundle proteins.

作者信息

Chou K C, Maggiora G M, Scheraga H A

机构信息

Computational Chemistry, Upjohn Laboratories, Kalamazoo, MI 49001.

出版信息

Proc Natl Acad Sci U S A. 1992 Aug 15;89(16):7315-9. doi: 10.1073/pnas.89.16.7315.

Abstract

One of the critical issues regarding proteins with a four-helix bundle motif is which interactions play the major role in stabilizing this type of folded structure: the interaction among the four alpha-helices or the interaction between the loop and helix segments. To answer this question, an energetic analysis has been carried out for three proteins with a four-helix bundle--namely, methemerythrin, cytochrome b-562, and cytochrome c'. The structures on which the analysis has been made were derived from their respective crystallographic coordinates. All three proteins have long helices (16-26 residues) and most of their loops are short (3-5 residues). However, it was found in all three proteins that loop-helix interactions were stronger than helix-helix interactions. Moreover, not only the nonbonded component but also the electrostatic component of the interaction energy were dominated by loop-helix interactions rather than by interhelix interactions, although the latter involve favorable helix-dipole interactions due to the antiparallel arrangement of neighboring helices. The results of the energetic analysis indicate that the loop segments, whether they are in a theoretical model or in real proteins, play a significant role in stabilizing proteins with four-helix bundles.

摘要

关于具有四螺旋束基序的蛋白质的一个关键问题是,哪种相互作用在稳定这种折叠结构中起主要作用:四个α螺旋之间的相互作用还是环与螺旋片段之间的相互作用。为了回答这个问题,对三种具有四螺旋束的蛋白质——即,血蓝蛋白、细胞色素b - 562和细胞色素c'进行了能量分析。进行分析所依据的结构来自它们各自的晶体学坐标。所有这三种蛋白质都有长螺旋(16 - 26个残基),并且它们的大多数环都很短(3 - 5个残基)。然而,在所有这三种蛋白质中都发现环 - 螺旋相互作用比螺旋 - 螺旋相互作用更强。此外,尽管由于相邻螺旋的反平行排列,后者涉及有利的螺旋偶极相互作用,但相互作用能的非键合成分以及静电成分都以环 - 螺旋相互作用为主,而非螺旋间相互作用。能量分析结果表明,环片段,无论它们是在理论模型中还是在实际蛋白质中,在稳定具有四螺旋束的蛋白质中都起着重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/272a/49700/9540b4858b1c/pnas01090-0039-a.jpg

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