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反向静电效应:未折叠状态下的静电排斥作用使亮氨酸拉链结构得以稳定。

Inverse electrostatic effect: electrostatic repulsion in the unfolded state stabilizes a leucine zipper.

作者信息

Marti Daniel N, Bosshard Hans Rudolf

机构信息

Institute of Biochemistry, University of Zürich, Winterthurerstrasse 190, CH-8057 Zürich, Switzerland.

出版信息

Biochemistry. 2004 Oct 5;43(39):12436-47. doi: 10.1021/bi048771t.

Abstract

The pH-dependent stability of a protein is strongly affected by electrostatic interactions between ionizable residues in the folded as well as unfolded state. Here we characterize the individual contributions of charged Glu and His residues to stability and determine the NMR structure of the designed, heterodimeric leucine zipper AB consisting of an acidic A chain and a basic B chain. Thermodynamic parameters are compared with those of the homologous leucine zipper AB(SS) in which the A and B chains are disulfide-linked. NMR structures of AB based on (1)H NMR data collected at 600 MHz converge, and formation of the same six interchain salt bridges found previously in disulfide-linked AB(SS) [Marti, D. N., and Bosshard, H. R. (2003) J. Mol. Biol. 330, 621-637] is indicated. While the structures of AB and AB(SS) are very similar, their pH-dependent relative stabilities are strikingly different. The stability of AB peaks at pH approximately 4.5 and is higher at pH 8 than at pH 2. In contrast, AB(SS) is most stable at acidic pH where no interhelical salt bridges are formed. The different energetic contributions of charged Glu and His residues to stability of the two coiled coil structures were evaluated from pK(a) shifts induced by folding. The six charged Glu residues involved in salt bridges stabilize leucine zipper AB by 4.5 kJ/mol yet destabilize disulfide-linked AB(SS) by -1.1 kJ/mol. Two non-ion-paired Glu charges destabilize AB by only -1.8 kJ/mol but AB(SS) by -5.6 kJ/mol. The higher relative stability of AB at neutral pH is not caused by more favorable electrostatic interactions in the folded leucine zipper. It is due mainly to unfavorable electrostatic interactions in the unfolded A and B chains and may therefore be called an inverse electrostatic effect. This study illustrates the importance of residual interactions in the unfolded state and how the energetics of the unfolded state affect the stability of the folded protein.

摘要

蛋白质的pH依赖性稳定性受到折叠态和未折叠态中可电离残基之间静电相互作用的强烈影响。在此,我们表征了带电荷的Glu和His残基对稳定性的个体贡献,并确定了由酸性A链和碱性B链组成的设计异源二聚体亮氨酸拉链AB的NMR结构。将热力学参数与同源亮氨酸拉链AB(SS)(其中A链和B链通过二硫键连接)的参数进行比较。基于在600 MHz收集的(1)H NMR数据得到的AB的NMR结构收敛,表明形成了先前在二硫键连接的AB(SS)中发现的相同的六个链间盐桥[Marti, D. N., and Bosshard, H. R. (2003) J. Mol. Biol. 330, 621 - 637]。虽然AB和AB(SS)的结构非常相似,但它们的pH依赖性相对稳定性却显著不同。AB的稳定性在pH约4.5时达到峰值,在pH 8时比在pH 2时更高。相反,AB(SS)在酸性pH下最稳定,此时不形成螺旋间盐桥。从折叠诱导的pK(a)位移评估了带电荷的Glu和His残基对两种卷曲螺旋结构稳定性的不同能量贡献。参与盐桥的六个带电荷的Glu残基使亮氨酸拉链AB稳定4.5 kJ/mol,但使二硫键连接的AB(SS)不稳定 - 1.1 kJ/mol。两个非离子配对的Glu电荷仅使AB不稳定 - 1.8 kJ/mol,但使AB(SS)不稳定 - 5.6 kJ/mol。AB在中性pH下较高的相对稳定性不是由折叠的亮氨酸拉链中更有利的静电相互作用引起的。这主要是由于未折叠的A链和B链中不利的静电相互作用,因此可能被称为反静电效应。这项研究说明了未折叠态中残余相互作用的重要性以及未折叠态的能量学如何影响折叠蛋白的稳定性。

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