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酶活性位点中静电相互作用能和质子化状态分布的测定。

Determination of electrostatic interaction energies and protonation state populations in enzyme active sites.

作者信息

Søndergaard Chresten R, McIntosh Lawrence P, Pollastri Gianluca, Nielsen Jens Erik

机构信息

School of Biomolecular and Biomedical Science, Centre for Synthesis and Chemical Biology, UCD Conway Institute, University College Dublin, Belfield, Dublin, Ireland.

出版信息

J Mol Biol. 2008 Feb 8;376(1):269-87. doi: 10.1016/j.jmb.2007.09.070. Epub 2007 Sep 29.

Abstract

The pH-dependence of the NMR chemical shift for titratable groups in proteins often deviate from a standard Henderson-Hasselbalch (HH) titration curve. A non-HH dependence of the chemical shift for a given residue can arise from a single-site, non-HH titrational event for that residue, or if the chemical shift of the group is influenced by additional titrational events occurring in other residues. We show that simultaneous fits of several non-HH NMR titration curves of interacting protein residues to a statistical mechanical model can be used to distinguish between these two cases. From fitting of non-HH titrations, we can extract electrostatic interaction energies between protein residues. Furthermore, by performing simultaneous fits of NMR titration curves and enzymatic pH-activity profiles, we can gain information on the identity and populations of the catalytically competent protonation states in enzymes. We apply the global fitting of titrational events (GloFTE) method to experimental data on five enzyme systems and on a single non-enzyme system, and show that the extracted electrostatic interaction energies and effective dielectric constants for a subset of these systems agree excellently with experimentally determined values as well as with theoretical calculations. In the case of reduced Escherichia coli thioredoxin we use GloFTE analysis to distinguish between two possible interpretations of the NMR titration curves of the active site residues. We also show that for the strongly coupled system of titratable groups in the active site of the Bacillus circulans xylanase (BCX) N35D mutant, GloFTE fits of a single titration curve and an enzymatic pH-activity profile can give a full description of the energetics of the titrational events in the enzyme's active site. Using only the X-ray crystallographic structure of the enzyme and the electrostatic interaction energies extracted from such a GloFTE fit, we can uniquely identify the three catalytic groups in this system. This raises the prospect of completely characterising active site titrational events from a single unassigned NMR titration curve and an enzymatic pH-activity profile.

摘要

蛋白质中可滴定基团的核磁共振(NMR)化学位移对pH的依赖性常常偏离标准的亨德森 - 哈塞尔巴尔赫(HH)滴定曲线。给定残基的化学位移呈现非HH依赖性,可能源于该残基的单一位点非HH滴定事件,或者该基团的化学位移受到其他残基中发生的额外滴定事件的影响。我们表明,将相互作用的蛋白质残基的几条非HH NMR滴定曲线同时拟合到统计力学模型中,可用于区分这两种情况。通过对非HH滴定进行拟合,我们可以提取蛋白质残基之间的静电相互作用能。此外,通过同时拟合NMR滴定曲线和酶促pH - 活性曲线,我们可以获得有关酶中具有催化活性的质子化状态的身份和数量的信息。我们将滴定事件全局拟合(GloFTE)方法应用于五个酶系统和一个非酶系统的实验数据,并表明这些系统子集中提取的静电相互作用能和有效介电常数与实验测定值以及理论计算结果非常吻合。对于还原型大肠杆菌硫氧还蛋白,我们使用GloFTE分析来区分活性位点残基NMR滴定曲线的两种可能解释。我们还表明,对于圆形芽孢杆菌木聚糖酶(BCX)N35D突变体活性位点中可滴定基团的强耦合系统,单条滴定曲线和酶促pH - 活性曲线的GloFTE拟合可以全面描述酶活性位点滴定事件的能量学。仅使用酶的X射线晶体结构以及从这种GloFTE拟合中提取的静电相互作用能,我们就可以唯一地识别该系统中的三个催化基团。这为从单条未归属的NMR滴定曲线和酶促pH - 活性曲线完全表征活性位点滴定事件带来了前景。

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