Protonation Kinetics in Proteins at Basic pH Determined by pH-Dependent NMR Relaxation Reveal the Entire Relationship between Kinetics and pKa Values

IF 8.5 Q1 CHEMISTRY, MULTIDISCIPLINARY
Paula L. Jordan, Heiner N. Raum, Stefan Gröger and Ulrich Weininger*, 
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Abstract

Ionizable amino acid side chains in proteins undergo constant protonation and deprotonation reactions. These proton exchange dynamics are a fundamental feature of proteins and their electrostatic character, as well as the basis for many biological processes, such as general acid–base enzyme catalysis. Such dynamics have been measured in a site-specific way for aspartates, glutamates, and histidines by pH-dependent NMR relaxation experiments. Linear free-energy relationships between kinetic and thermodynamic parameters have been established that allow the description of proton-mediated proton exchange at low to neutral pH. Here, we complement the picture by determining the proton exchange kinetics of lysine and tyrosine side chains at basic pH. They display matching linear free-energy relationships that enable the description of hydroxide-mediated proton exchange at high pH. The underlying maximal second-order rate constants are approximately a factor of 40 higher for hydronium association compared to hydroxide dissociation. These combined findings provide a general framework for describing protonation kinetics, allowing for the prediction of protonation and deprotonation rate constants for ionizable groups with all possible pKa values across the entire pH range.

碱性pH下蛋白质质子化动力学的pH依赖核磁共振弛豫揭示了动力学与pKa值之间的全部关系
蛋白质中可电离的氨基酸侧链经历不断的质子化和去质子化反应。这些质子交换动力学是蛋白质及其静电特性的基本特征,也是许多生物过程的基础,例如一般的酸碱酶催化。通过ph依赖性核磁共振弛豫实验,以特定位点的方式测量了天冬氨酸、谷氨酸和组氨酸的这种动力学。动力学和热力学参数之间的线性自由能关系已经建立,允许在低至中性ph下描述质子介导的质子交换。我们通过确定赖氨酸和酪氨酸侧链在碱性ph下的质子交换动力学来补充这幅图。它们显示出匹配的线性自由能关系,从而能够描述高ph下氢氧根催化的质子交换。与氢氧根解离相比,水合氢离子缔合的潜在最大二阶速率常数大约高出40倍。这些综合发现为描述质子化动力学提供了一个总体框架,允许在整个pH范围内所有可能的pKa值下预测可电离基团的质子化和去质子化速率常数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.10
自引率
0.00%
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审稿时长
10 weeks
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