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通过稳态动力学模型深入了解氮酶 FeMo 辅因子催化的机理

Mechanistic Insights into Nitrogenase FeMo-Cofactor Catalysis through a Steady-State Kinetic Model.

机构信息

Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322, United States.

出版信息

Biochemistry. 2022 Oct 4;61(19):2131-2137. doi: 10.1021/acs.biochem.2c00415. Epub 2022 Sep 14.

Abstract

Mo-nitrogenase catalyzes the challenging N-to-NH reduction. This complex reaction proceeds through a series of intermediate states (E) of its active site FeMo-cofactor. An understanding of the kinetics of the conversion between E states is central to defining the mechanism of nitrogenase. Here, rate constants of key steps have been determined through a steady-state kinetic model with fits to experimental data. The model reveals that the rate for H formation from the early electron populated state E(2H) is much slower than that from the more reduced E(4H) state. Further, it is found that the competing reactions of H formation and N binding at the E(4H) state occur with equal rate constants. The H-dependent reverse reaction of the N binding step is found to have a rate constant of 5.5 ± 0.2 (atm H) s (7.2 ± 0.3 (mM H) s). Importantly, the reduction of N bound to FeMo-cofactor proceeds with a rate constant of 1 ± 0.1 s, revealing a previously unrecognized slow step in the Mo-nitrogenase catalytic cycle associated with the chemical transformation of N to 2 NH. Finally, the populations of E states under different reaction conditions are predicted, providing a powerful tool to guide the spectroscopic and mechanistic studies of Mo-nitrogenase.

摘要

钼氮酶催化着极具挑战性的 N 到 NH 的还原反应。该复杂反应通过其活性位点 FeMo 辅因子的一系列中间态(E)进行。理解 E 态之间的转化动力学对于定义氮酶的机制至关重要。在此,通过稳态动力学模型和对实验数据的拟合,确定了关键步骤的速率常数。该模型表明,从早期电子填充态 E(2H)形成 H 的速率比从更还原的 E(4H)态慢得多。此外,还发现 E(4H)态中 H 形成和 N 结合的竞争反应具有相同的速率常数。发现 N 结合步骤的 H 依赖性逆向反应的速率常数为 5.5 ± 0.2(atm H)s(7.2 ± 0.3(mM H)s)。重要的是,与 N 结合到 FeMo 辅因子的还原反应进行的速率常数为 1 ± 0.1 s,揭示了钼氮酶催化循环中与 N 向 2 NH 的化学转化相关的先前未被认识到的缓慢步骤。最后,预测了不同反应条件下 E 态的种群,为钼氮酶的光谱学和机制研究提供了有力工具。

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