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首页> 外文期刊>Theoretical Chemistry Accounts >New insights into the mechanism of the Schiff base formation catalyzed by type I dehydroquinate dehydratase from S. enterica
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New insights into the mechanism of the Schiff base formation catalyzed by type I dehydroquinate dehydratase from S. enterica

机译:肠炎沙门菌I型脱氢喹啉脱水酶催化席夫碱形成机理的新见解

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The Schiff base formation catalyzed by type I dehydroquinate dehydratase (DHQD) from Salmonella enterica has been studied by molecular docking, molecular dynamics simulation, and quantum chemical calculations. The substrate locates stably a similar position as the Schiff base intermediate observed in the crystal structure and forms strong hydrogen bonds with several active site residues. This binding mode is different from that of several other Schiff base enzymes. Then, the quantum chemical model has been constructed and the fundamental reaction pathways have been explored by performing quantum chemical calculation. The energy barrier of the previously proposed reaction pathway is calculated to be 30.7 kcal/mol, which is much higher than the experimental value of 14.3 kcal/mol of the whole dehydration reaction by type I DHQD from S. enterica. It means that this pathway is not favorable in energy. Therefore, a new and unexpected reaction pathway has been investigated with the favorable and reasonable energy barrier of 12.1 kcal/mol. The complicated role of catalytic His143 residue has also been elucidated that it mediates two proton transfers to facilitate the reaction. Moreover, the similarity and the difference between these two reaction pathways have been analyzed in detail. The new structural and mechanistic insights may direct the design of the inhibitors of type I dehydroquinate dehydratase as non-toxic antimicrobials, antifungals, and herbicides.
机译:通过分子对接,分子动力学模拟和量子化学计算,研究了由肠沙门氏菌I型脱氢奎宁酸脱水酶(DHQD)催化的席夫碱形成。底物稳定地位于与在晶体结构中观察到的席夫碱中间体相似的位置,并与几个活性位点残基形成牢固的氢键。这种结合方式不同于其他几种席夫碱酶。然后,通过进行量子化学计算,建立了量子化学模型并探索了基本的反应途径。先前提出的反应路径的能垒经计算为30.7 kcal / mol,远高于肠溶链球菌I型DHQD的整个脱水反应的14.3 kcal / mol的实验值。这意味着该途径不利于能量。因此,已经研究了一种新的和出乎意料的反应途径,其具有12.1 kcal / mol的有利且合理的能垒。还已经阐明了催化的His143残基的复杂作用,即其介导了两个质子转移以促进反应。而且,已经详细分析了这两种反应途径之间的相似性和差异。新的结构和机理研究可能会指导I型脱氢奎宁酸盐脱水酶抑制剂的设计,如无毒抗菌剂,抗真菌剂和除草剂。

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