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酶催化中静电作用与构象运动的观点

Perspectives on electrostatics and conformational motions in enzyme catalysis.

作者信息

Hanoian Philip, Liu C Tony, Hammes-Schiffer Sharon, Benkovic Stephen

机构信息

Department of Chemistry, Pennsylvania State University , University Park, Pennsylvania 16802, United States.

出版信息

Acc Chem Res. 2015 Feb 17;48(2):482-9. doi: 10.1021/ar500390e. Epub 2015 Jan 7.

Abstract

CONSPECTUS

Enzymes are essential for all living organisms, and their effectiveness as chemical catalysts has driven more than a half century of research seeking to understand the enormous rate enhancements they provide. Nevertheless, a complete understanding of the factors that govern the rate enhancements and selectivities of enzymes remains elusive, due to the extraordinary complexity and cooperativity that are the hallmarks of these biomolecules. We have used a combination of site-directed mutagenesis, pre-steady-state kinetics, X-ray crystallography, nuclear magnetic resonance (NMR), vibrational and fluorescence spectroscopies, resonance energy transfer, and computer simulations to study the implications of conformational motions and electrostatic interactions on enzyme catalysis in the enzyme dihydrofolate reductase (DHFR). We have demonstrated that modest equilibrium conformational changes are functionally related to the hydride transfer reaction. Results obtained for mutant DHFRs illustrated that reductions in hydride transfer rates are correlated with altered conformational motions, and analysis of the evolutionary history of DHFR indicated that mutations appear to have occurred to preserve both the hydride transfer rate and the associated conformational changes. More recent results suggested that differences in local electrostatic environments contribute to finely tuning the substrate pKa in the initial protonation step. Using a combination of primary and solvent kinetic isotope effects, we demonstrated that the reaction mechanism is consistent across a broad pH range, and computer simulations suggested that deprotonation of the active site Tyr100 may play a crucial role in substrate protonation at high pH. Site-specific incorporation of vibrational thiocyanate probes into the ecDHFR active site provided an experimental tool for interrogating these microenvironments and for investigating changes in electrostatics along the DHFR catalytic cycle. Complementary molecular dynamics simulations in conjunction with mixed quantum mechanical/molecular mechanical calculations accurately reproduced the vibrational frequency shifts in these probes and provided atomic-level insight into the residues influencing these changes. Our findings indicate that conformational and electrostatic changes are intimately related and functionally essential. This approach can be readily extended to the study of other enzyme systems to identify more general trends in the relationship between conformational fluctuations and electrostatic interactions. These results are relevant to researchers seeking to design novel enzymes as well as those seeking to develop therapeutic agents that function as enzyme inhibitors.

摘要

综述

酶对所有生物都至关重要,其作为化学催化剂的有效性推动了半个多世纪的研究,旨在理解它们所提供的巨大速率增强作用。然而,由于这些生物分子的标志性特征——非凡的复杂性和协同性,对控制酶的速率增强和选择性的因素仍缺乏全面理解。我们结合定点诱变、稳态前动力学、X射线晶体学、核磁共振(NMR)、振动和荧光光谱、共振能量转移以及计算机模拟,研究构象运动和静电相互作用对二氢叶酸还原酶(DHFR)催化作用的影响。我们已经证明适度的平衡构象变化在功能上与氢化物转移反应相关。突变型DHFR的研究结果表明,氢化物转移速率的降低与构象运动的改变相关,对DHFR进化史的分析表明,似乎发生了突变以维持氢化物转移速率和相关的构象变化。最近的结果表明,局部静电环境的差异有助于在初始质子化步骤中精细调节底物的pKa。通过结合一级和溶剂动力学同位素效应,我们证明反应机制在很宽的pH范围内是一致的,计算机模拟表明活性位点Tyr100的去质子化可能在高pH下底物质子化中起关键作用。将振动硫氰酸盐探针位点特异性地掺入ecDHFR活性位点,为探究这些微环境以及研究DHFR催化循环中静电变化提供了一种实验工具。结合混合量子力学/分子力学计算的互补分子动力学模拟准确地再现了这些探针中的振动频率变化,并提供了影响这些变化的残基的原子水平见解。我们的研究结果表明,构象和静电变化密切相关且在功能上至关重要。这种方法可以很容易地扩展到其他酶系统的研究,以确定构象波动和静电相互作用之间关系的更普遍趋势。这些结果与寻求设计新型酶的研究人员以及寻求开发作为酶抑制剂的治疗剂的研究人员相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d6d/4334233/e5afe15b629c/ar-2014-00390e_0001.jpg

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