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卷曲螺旋亮氨酸拉链肽中酰胺质子交换率的周期性

Periodicity of amide proton exchange rates in a coiled-coil leucine zipper peptide.

作者信息

Goodman E M, Kim P S

机构信息

Howard Hughes Medical Institute, Whitehead Institute for Biomedical Research, Department of Biology, Massachusetts Institute of Technology, Cambridge 02142.

出版信息

Biochemistry. 1991 Dec 17;30(50):11615-20. doi: 10.1021/bi00114a002.

Abstract

The two-stranded coiled-coil motif, which includes leucine zippers, is a simple protein structure that is well suited for studies of helix-helix interactions. The interaction between helices in a coiled coil involves packing of "knobs" into "holes", as predicted by Crick in 1953 and confirmed recently by X-ray crystallography for the GCN4 leucine zipper [O'Shea, E.K., Klemm, J.D., Kim, P.S., & Alber, T. (1991) Science 254, 539]. A striking periodicity, extending over six helical turns, is observed in the rates of hydrogen-deuterium exchange for amide protons in a peptide corresponding to the leucine zipper of GCN4. Protons at the hydrophobic interface show the most protection from exchange. The NMR chemical shifts of amide protons in the helices also show a pronounced periodicity which predicts a short H-bond followed by a long H-bond every seven residues. This variation was anticipated in 1953 by Pauling and is sufficient to give rise to a local left-handed superhelical twist characteristic of coiled coils. The amide protons that lie at the base of the "hole" in the "knobs-into-holes" packing show slow amide proton exchange rates and are predicted to have short H-bond lengths. These results suggest that tertiary interactions can lead to highly localized, but substantial, differences in stability and dynamics within a secondary structure element and emphasize the dominant nature of packing interactions in determining protein structure.

摘要

包括亮氨酸拉链在内的双链卷曲螺旋基序是一种简单的蛋白质结构,非常适合用于研究螺旋-螺旋相互作用。如1953年克里克所预测并最近通过X射线晶体学对GCN4亮氨酸拉链的研究证实[奥谢,E.K.,克莱姆,J.D.,金,P.S.,& 阿尔伯,T.(1991年)《科学》254,539],卷曲螺旋中螺旋之间的相互作用涉及“旋钮”填入“孔洞”。在与GCN4亮氨酸拉链对应的肽段中,酰胺质子的氢-氘交换速率呈现出跨越六个螺旋圈的显著周期性。疏水界面处的质子对交换的保护作用最强。螺旋中酰胺质子的核磁共振化学位移也呈现出明显的周期性,预测每七个残基会出现一个短氢键和一个长氢键。这种变化在1953年由鲍林预见到,足以产生卷曲螺旋特有的局部左手超螺旋扭曲。位于“旋钮填入孔洞”堆积中“孔洞”底部的酰胺质子显示出缓慢的酰胺质子交换速率,预计具有较短的氢键长度。这些结果表明,三级相互作用可导致二级结构元件内稳定性和动力学存在高度局部但显著的差异,并强调了堆积相互作用在决定蛋白质结构中的主导性质。

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