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How Are Substrate Binding and Catalysis Affected by Mutating Glu127 and Arg161 in Prolyl-4-hydroxylase? A QM/MM and MD Study

机译:脯氨酸-4-羟化酶中的Glu127和Arg161突变如何影响底物的结合和催化作用? QM / MM和MD研究

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Prolyl-4-hydroxylase is a vital enzyme for human physiology involved in the biosynthesis of 4-hydroxyproline, an essential component for collagen formation. The enzyme performs a unique stereo- and regioselective hydroxylation at the C4 position of proline despite the fact that the C5 hydrogen atom should be thermodynamically easier to abstract. To gain insight into the mechanism and find the origin of this regioselectivity, we have done a quantum mechanics/molecular mechanics (QM/MM) study on wildtype and mutant structures. In a previous study [Timmins, Saint-André and de Visser, J. Am. Chem. Soc. 2017] we identified several active site residues critical for substrate binding and positioning. In particular, the Glu127 and Arg161 were shown to form multiple hydrogen bonding and ion-dipole interactions with substrate and could thereby affect the regio- and stereoselectivity of the reaction. In this work, we decided to test that hypothesis and report a QM/MM and molecular dynamics (MD) study on prolyl-4-hydroxylase and several active site mutants where Glu127 or Arg161 are mutated for Asp, Gln or Lys. Thus, the R161D and R161Q mutants give very high barriers for hydrogen atom abstraction from any proline C–H bond and therefore will be inactive. The R161K mutant, by contrast, sees the regio- and stereoselectivity of the reaction change but still is expected to hydroxylate proline at room temperature. By contrast, the Glu127 mutants E127D and E127Q show possible changes in regioselectivity with the former being more probable to react compared to the latter.
机译:脯氨酰-4-羟化酶是人类生理中至关重要的酶,参与了4-羟脯氨酸的生物合成,4-羟脯氨酸是胶原蛋白形成的重要组成部分。尽管C5氢原子在热力学上应更易于提取,但该酶在脯氨酸的C4位上执行独特的立体和区域选择性羟基化反应。为了深入了解这种机理并找到这种区域选择性的起源,我们对野生型和突变体结构进行了量子力学/分子力学(QM / MM)研究。在先前的研究中[Timmins,Saint-André和de Visser,J。Am。化学Soc。 [2017年],我们确定了对底物结合和定位至关重要的几个活性位点残基。特别地,显示出Glu127和Arg161与底物形成多个氢键和离子-偶极相互作用,从而可能影响反应的区域选择性和立体选择性。在这项工作中,我们决定测试该假设,并报告有关脯氨酰-4-羟化酶和几个Glu127或Arg161突变为Asp,Gln或Lys的活性位点突变体的QM / MM和分子动力学(MD)研究。因此,R161D和R161Q突变体为从任何脯氨酸C–H键中夺取氢原子提供了很高的屏障,因此将是无活性的。相比之下,R161K突变体看到了反应区域和立体选择性的变化,但仍有望在室温下羟化脯氨酸。相比之下,Glu127突变体E127D和E127Q显示出区域选择性的可能变化,与后者相比,前者更可能反应。

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