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鸡蛋清溶菌酶溶液结构的压力依赖性变化

Pressure-dependent changes in the solution structure of hen egg-white lysozyme.

作者信息

Refaee Mohamed, Tezuka Tomoko, Akasaka Kazuyuki, Williamson Michael P

机构信息

Department of Molecular Biology and Biotechnology, University of Sheffield, Firth Court, Western Bank, PO Box 594, Sheffiled S10 2UH, UK.

出版信息

J Mol Biol. 2003 Apr 4;327(4):857-65. doi: 10.1016/s0022-2836(03)00209-2.

Abstract

The "rules" governing protein structure and stability are still poorly understood. Important clues have come from proteins that operate under extreme conditions, because these clarify the physical constraints on proteins. One obvious extreme is pressure, but so far little is known of the behavior of proteins under pressure, largely for technical reasons. We have therefore developed new methodology for calculating structure change in solution with pressure, using NMR chemical shift changes, and we report the change in structure of lysozyme on going from 30 bar to 2000 bar, this being the first solution structure of a globular protein under pressure. The alpha-helical domain is compressed by approximately 1%, due to tighter packing between helices. The interdomain region is also compressed. By contrast, the beta-sheet domain displays very little overall compression, but undergoes more structural distortion than the alpha-domain. The largest volume changes tend to occur close to hydrated cavities. Because isothermal compressibility is related to volume fluctuation, this suggests that buried water molecules play an important role in conformational fluctuation at normal pressures, and are implicated as the nucleation sites for structural changes leading to pressure denaturation or channel opening.

摘要

目前人们对蛋白质结构和稳定性的“规则”仍知之甚少。重要线索来自于在极端条件下发挥作用的蛋白质,因为这些蛋白质阐明了对蛋白质的物理限制。一个明显的极端情况是压力,但到目前为止,由于技术原因,人们对蛋白质在压力下的行为了解甚少。因此,我们开发了一种新方法,利用核磁共振化学位移变化来计算溶液中压力作用下的结构变化,并报告了溶菌酶从30巴到2000巴时的结构变化,这是球状蛋白质在压力下的首个溶液结构。α-螺旋结构域由于螺旋之间堆积更紧密而被压缩了约1%。结构域间区域也被压缩。相比之下,β-折叠结构域整体压缩程度很小,但比α-结构域经历了更多的结构扭曲。最大的体积变化往往发生在靠近水合腔的地方。由于等温压缩率与体积波动有关,这表明埋藏的水分子在常压下的构象波动中起重要作用,并被认为是导致压力变性或通道开放的结构变化的成核位点。

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