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首页> 外文期刊>Biochemistry >The Protonation State of Catalytic Residues in the Resting State of KasA Revisited: Detailed Mechanism for the Activation of KasA by Its Own Substrate
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The Protonation State of Catalytic Residues in the Resting State of KasA Revisited: Detailed Mechanism for the Activation of KasA by Its Own Substrate

机译:再探KasA静止状态下催化残基的质子化状态:KasA自身底物激活的详细机制

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摘要

Mycobacterium tuberculosis is the causative pathogen of tuberculosis, the second leading cause of death from an infectious disease globally. β-Ketoacyl ACP synthase I (KasA) is essential for the survival of M. tuberculosis, because it is one of the key enzymes in the biosynthetic pathway of mycolic acid, the building block of the cell wall in M. tuberculosis. To distinguish among the various suggested mechanisms of KasA that are based on different protonation states of the active site, we characterize its resting state by various theoretical approaches ranging from firstprinciple- based quantum mechanical/molecular mechanical molecular dynamics simulations (QM/MM MD) with large QM parts to force field-based MD and free energy perturbation computations. In contrast to a previous study that used less reliable semiempirical approaches in combination with smaller QM parts, our improved computations predict that the most important active site residues, Cys171 and His311, are neutral. Because the neutral catalytic residues are too unreactive to attack the substrate, the question of how their activation is achieved arises. Combining our computed results with structural information about the malonyl binding pocket, we devised a detailed model about the activation mechanism. A conformational change of Phe404 possibly triggered by the substrate is central for the activation because it switches KasA to the sufficiently reactive zwitterionic state.
机译:结核分枝杆菌是结核病的病原体,是全球第二大传染病致死原因。 β-酮酰基ACP合酶I(KasA)对于结核分枝杆菌的生存至关重要,因为它是分支霉菌酸(结核分枝杆菌细胞壁的组成部分)生物合成途径中的关键酶之一。为了区分基于活性位点不同质子化状态的各种建议的KasA机制,我们通过多种理论方法来表征其静止状态,这些方法包括基于第一原理的量子力学/分子机械分子动力学模拟(QM / MM MD)和大型QM零件可强制进行基于场的MD和自由能扰动计算。与先前的研究结合使用不太可靠的半经验方法和较小的QM零件相比,我们的改进计算预测,最重要的活性位点残基Cys171和His311是中性的。由于中性催化残基的反应性太强而无法侵蚀底物,因此出现了如何实现其活化的问题。结合我们的计​​算结果与有关丙二酰基结合口袋的结构信息,我们设计了有关激活机制的详细模型。可能由底物触发的Phe404构象变化对于激活至关重要,因为它会将KasA切换到足够反应性的两性离子状态。

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