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Conformational diversity induces nanosecond-timescale chemical disorder in the HIV-1 protease reaction pathway

机译:构象多样性在HIV-1蛋白酶反应途径中诱发纳秒级的化学紊乱

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摘要

The role of conformational diversity in enzyme catalysis has been a matter of analysis in recent studies. Pre-organization of the active site has been pointed out as the major source for enzymes' catalytic power. Following this line of thought, it is becoming clear that specific, instantaneous, non-rare enzyme conformations that make the active site perfectly pre-organized for the reaction lead to the lowest activation barriers that mostly contribute to the macroscopically observed reaction rate. The present work is focused on exploring the relationship between structure and catalysis in HIV-1 protease (PR) with an adiabatic mapping method, starting from different initial structures, collected from a classical MD simulation. The first, rate-limiting step of the HIV-1 PR catalytic mechanism was studied with the ONIOM QM/MM methodology (B3LYP/6-31G(d):ff99SB), with activation and reaction energies calculated at the M06-2X/6-311++G(2d,2p):ff99SB level of theory, in 19 different enzyme:substrate conformations. The results showed that the instantaneous enzyme conformations have two independent consequences on the enzyme's chemistry: they influence the barrier height, something also observed in the past in other enzymes, and they also influence the specific reaction pathway, which is something unusual and unexpected, challenging the “one enzyme–one substrate–one reaction mechanism” paradigm. Two different reaction mechanisms, with similar reactant probabilities and barrier heights, lead to the same gem-diol intermediate. Subtle nanosecond-timescale rearrangements in the active site hydrogen bonding network were shown to determine which reaction the enzyme follows. We named this phenomenon chemical disorder. The results make us realize the unexpected mechanistic consequences of conformational diversity in enzymatic reactivity.
机译:构象多样性在酶催化中的作用是最近研究中分析的问题。有人指出,活性位点的预组织是酶催化能力的主要来源。按照这种思路,很清楚的是,使活性位点完美地针对反应进行组织的特定的,瞬时的,非稀有的酶构象导致最低的激活障碍,而这些障碍主要是宏观上观察到的反应速率。本工作的重点是通过绝热作图方法探索HIV-1蛋白酶(PR)中结构与催化之间的关系,该方法从经典的MD模拟收集的不同初始结构开始。使用ONIOM QM / MM方法(B3LYP / 6-31G(d):ff99SB)研究了HIV-1 PR催化机制的第一步限速步骤,并在M06-2X / 6上计算了活化能和反应能-311 ++ G(2d,2p):ff99SB的理论水平,采用19种不同的酶:底物构象。结果表明,瞬时酶构象对酶的化学性质有两个独立的影响:它们影响屏障高度,过去在其他酶中也观察到这一点,并且它们还影响特定的反应途径,这是不寻常,出乎意料的,具有挑战性的“一种酶–一种底物–一种反应机理”的范例。具有相似的反应物概率和势垒高度的两种不同的反应机理导致相同的宝石二醇中间体。显示了活性位点氢键网络中微妙的纳秒级时域重排,可确定酶的反应。我们将这种现象称为化学障碍。结果使我们认识到构象多样性在酶促反应中的意想不到的机制后果。

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