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Critical Role Of Substrate Conformational Change In The Proton Transfer Process Catalyzed By 4-oxalocrotonate Tautomerase

机译:4-草酰巴豆酸酯互变异构酶催化底物构象变化在质子转移过程中的关键作用

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4-Oxalocrotonate tautomerase enzyme (4-OT) catalyzes the isomerization of 2-oxo-4-hexene-dioate to 2-oxo-3-hexenedioate. The chemical process involves two proton transfers, one from a carbon of the substrate to the nitrogen of Pro1 and another from this nitrogen atom to a different carbon of the substrate. In this paper the isomerization has been studied using the combined quantum mechanical and molecular mechanical method with a dual-level treatment of the quantum subsystem employing the MPW1BK density functional as the higher level. Exploration of the potential energy surface shows that the process is stepwise, with a stable intermediate state corresponding to the deprotonated substrate and a protonated proline. The rate constant of the overall process has been evaluated using ensemble-averaged variational transition state theory, including the quantized vibrational motion of a primary zone of active-site atoms and a transmission coefficient based on an ensemble of optimized reaction coordinates to account for recrossing trajectories and optimized multidimensional tunneling. The two proton-transfer steps have similar free energy barriers, but the transition state associated with the first proton transfer is found to be higher in energy. The calculations show that reaction progress is coupled to a conformational change of the substrate, so it is important that the simulation allows this flexibility. The coupled conformational change is promoted by changes in the electron distribution of the substrate that take place as the proton transfers occur.
机译:4-氧代巴豆酸酯互变异构酶(4-OT)催化2-氧代-4-己烯二酸酯向2-氧代-3-己烯二酸酯的异构化。化学过程涉及两个质子转移,一个从底物的碳转移到Pro1的氮,另一个从该氮原子转移到底物的不同碳。在本文中,已经使用量子力学和分子力学相结合的方法对异构化进行了研究,并对采用MPW1BK密度泛函的量子子系统进行了双级处理。对势能表面的探索表明该过程是逐步的,具有与去质子化的底物和质子化的脯氨酸相对应的稳定中间状态。总体过程的速率常数已使用集合平均变分过渡状态理论进行了评估,包括活性位原子主要区域的量化振动运动和基于优化反应坐标系的传输系数,以解决交叉轨迹问题。和优化的多维隧道。两个质子转移步骤具有相似的自由能垒,但是发现与第一次质子转移相关的过渡态具有更高的能量。计算表明反应进程与底物的构象变化有关,因此重要的是模拟必须具有这种灵活性。伴随的构象变化通过质子转移发生时发生的基板电子分布的变化而促进。

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