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本文引用的文献

1
Comparison of coupled motions in Escherichia coli and Bacillus subtilis dihydrofolate reductase.大肠杆菌和枯草芽孢杆菌二氢叶酸还原酶中耦合运动的比较。
J Phys Chem B. 2006 May 25;110(20):10130-8. doi: 10.1021/jp0605956.
2
Hydrogen tunneling and protein motion in enzyme reactions.酶促反应中的氢隧穿与蛋白质运动
Acc Chem Res. 2006 Feb;39(2):93-100. doi: 10.1021/ar040199a.
3
Conformation coupled enzyme catalysis: single-molecule and transient kinetics investigation of dihydrofolate reductase.构象偶联酶催化:二氢叶酸还原酶的单分子与瞬态动力学研究
Biochemistry. 2005 Dec 27;44(51):16835-43. doi: 10.1021/bi051378i.
4
Impact of distal mutations on the network of coupled motions correlated to hydride transfer in dihydrofolate reductase.远端突变对二氢叶酸还原酶中与氢化物转移相关的耦合运动网络的影响。
Proc Natl Acad Sci U S A. 2005 May 10;102(19):6807-12. doi: 10.1073/pnas.0408343102. Epub 2005 Apr 5.
5
The coupling of structural fluctuations to hydride transfer in dihydrofolate reductase.二氢叶酸还原酶中结构波动与氢化物转移的耦合。
Proteins. 2004 Nov 15;57(3):444-57. doi: 10.1002/prot.20219.
6
Protein motions promote catalysis.蛋白质运动促进催化作用。
Chem Biol. 2004 Aug;11(8):1037-42. doi: 10.1016/j.chembiol.2004.06.007.
7
Tunneling and coupled motion in the Escherichia coli dihydrofolate reductase catalysis.大肠杆菌二氢叶酸还原酶催化过程中的隧道效应和耦合运动。
J Am Chem Soc. 2004 Apr 21;126(15):4778-9. doi: 10.1021/ja031683w.
8
Pivotal role of Gly 121 in dihydrofolate reductase from Escherichia coli: the altered structure of a mutant enzyme may form the basis of its diminished catalytic performance.甘氨酸121在大肠杆菌二氢叶酸还原酶中的关键作用:突变酶结构的改变可能是其催化性能降低的基础。
Biochemistry. 2004 Apr 13;43(14):4119-27. doi: 10.1021/bi036164k.
9
Effect of cofactor binding and loop conformation on side chain methyl dynamics in dihydrofolate reductase.辅因子结合和环构象对二氢叶酸还原酶侧链甲基动力学的影响。
Biochemistry. 2004 Jan 20;43(2):374-83. doi: 10.1021/bi035464z.
10
Reaction-path energetics and kinetics of the hydride transfer reaction catalyzed by dihydrofolate reductase.二氢叶酸还原酶催化的氢化物转移反应的反应路径能量学和动力学
Biochemistry. 2003 Nov 25;42(46):13558-75. doi: 10.1021/bi034824f.

大肠杆菌和枯草芽孢杆菌二氢叶酸还原酶催化的氢化物转移:耦合运动和远端突变

Hydride transfer catalysed by Escherichia coli and Bacillus subtilis dihydrofolate reductase: coupled motions and distal mutations.

作者信息

Hammes-Schiffer Sharon, Watney James B

机构信息

Department of Chemistry, Pennsylvania State University, 104 Chemistry Building, University Park, PA 16802, USA.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2006 Aug 29;361(1472):1365-73. doi: 10.1098/rstb.2006.1869.

DOI:10.1098/rstb.2006.1869
PMID:16873124
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1647314/
Abstract

This paper reviews the results from hybrid quantum/classical molecular dynamics simulations of the hydride transfer reaction catalysed by wild-type (WT) and mutant Escherichia coli and WT Bacillus subtilis dihydrofolate reductase (DHFR). Nuclear quantum effects such as zero point energy and hydrogen tunnelling are significant in these reactions and substantially decrease the free energy barrier. The donor-acceptor distance decreases to ca 2.7 A at transition-state configurations to enable the hydride transfer. A network of coupled motions representing conformational changes along the collective reaction coordinate facilitates the hydride transfer reaction by decreasing the donor-acceptor distance and providing a favourable geometric and electrostatic environment. Recent single-molecule experiments confirm that at least some of these thermally averaged equilibrium conformational changes occur on the millisecond time-scale of the hydride transfer. Distal mutations can lead to non-local structural changes and significantly impact the probability of sampling configurations conducive to the hydride transfer, thereby altering the free-energy barrier and the rate of hydride transfer. E. coli and B. subtilis DHFR enzymes, which have similar tertiary structures and hydride transfer rates with 44% sequence identity, exhibit both similarities and differences in the equilibrium motions and conformational changes correlated to hydride transfer, suggesting a balance of conservation and flexibility across species.

摘要

本文综述了野生型(WT)和突变型大肠杆菌以及野生型枯草芽孢杆菌二氢叶酸还原酶(DHFR)催化的氢化物转移反应的量子/经典混合分子动力学模拟结果。零点能和氢隧穿等核量子效应在这些反应中很显著,并大幅降低了自由能垒。在过渡态构型下,供体 - 受体距离减小至约2.7埃,以实现氢化物转移。代表沿集体反应坐标的构象变化的耦合运动网络通过减小供体 - 受体距离并提供有利的几何和静电环境,促进了氢化物转移反应。最近的单分子实验证实,这些热平均平衡构象变化中至少有一些发生在氢化物转移的毫秒时间尺度上。远端突变可导致非局部结构变化,并显著影响有利于氢化物转移的构型采样概率,从而改变自由能垒和氢化物转移速率。大肠杆菌和枯草芽孢杆菌的DHFR酶具有相似的三级结构和氢化物转移速率,序列同一性为44%,它们在与氢化物转移相关的平衡运动和构象变化方面表现出异同,这表明不同物种之间存在保守性和灵活性的平衡。