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二氢叶酸还原酶中结构波动与氢化物转移的耦合。

The coupling of structural fluctuations to hydride transfer in dihydrofolate reductase.

作者信息

Thorpe Ian F, Brooks Charles L

机构信息

Department of Molecular Biology (TPC-06), The Scripps Research Institute, La Jolla, California 92037, USA.

出版信息

Proteins. 2004 Nov 15;57(3):444-57. doi: 10.1002/prot.20219.

Abstract

The energy barrier for hydride transfer in wild-type G121V and G121S variants of Escherichia coli dihydrofolate reductase (DHFR) fluctuates in a time-dependent manner. This fluctuation may be attributed to structural changes in the protein that modulate the site of chemistry. Despite being far from the active site, mutations at position 121 of DHFR reduce the hydride transfer rate of the enzyme. This occurrence has been suggested to arise from modifications to the conformational ensemble of the protein. We elucidate the effects of the G121S and G121V mutations on the hydride transfer barrier by identifying structural changes in the protein that correlate with lowered barriers. The effect of these structural parameters on the hydride transfer barrier may be rationalized by simple considerations of the geometric constraints of the hydride transfer reaction. Fluctuations of these properties are associated with specific backbone dihedral angles of residues within the Methione-20 (M20) loop. The dihedral angle preferences are mediated by interactions with the region of the enzyme in the vicinity of residue 121 and are translated into distinct ligand conformations. We predict mutations within the M20 loop that may alter the conformational space explored by DHFR. Such mutational changes are anticipated to adjust the hydride transfer efficacy of DHFR by modifying equilibrium distributions of hydride transfer barriers found in the enzyme.

摘要

在大肠杆菌二氢叶酸还原酶(DHFR)的野生型G121V和G121S变体中,氢化物转移的能量屏障以时间依赖的方式波动。这种波动可能归因于调节化学反应位点的蛋白质结构变化。尽管距离活性位点较远,但DHFR第121位的突变会降低该酶的氢化物转移速率。有人认为这种现象是由于蛋白质构象集合的改变引起的。我们通过识别与降低的屏障相关的蛋白质结构变化,阐明了G121S和G121V突变对氢化物转移屏障的影响。这些结构参数对氢化物转移屏障的影响可以通过对氢化物转移反应几何约束的简单考虑来合理化。这些性质的波动与甲硫氨酸-20(M20)环内残基的特定主链二面角相关。二面角偏好由与121位残基附近的酶区域的相互作用介导,并转化为不同的配体构象。我们预测M20环内的突变可能会改变DHFR探索的构象空间。预计这种突变变化将通过改变酶中发现的氢化物转移屏障的平衡分布来调节DHFR的氢化物转移效率。

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