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F1-ATP酶的βTP和βDP催化位点中的ATP水解

ATP hydrolysis in the betaTP and betaDP catalytic sites of F1-ATPase.

作者信息

Dittrich Markus, Hayashi Shigehiko, Schulten Klaus

机构信息

Beckman Institute, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.

出版信息

Biophys J. 2004 Nov;87(5):2954-67. doi: 10.1529/biophysj.104.046128. Epub 2004 Aug 17.

Abstract

The enzyme F1-adenosine triphosphatase (ATPase) is a molecular motor that converts the chemical energy stored in the molecule adenosine triphosphate (ATP) into mechanical rotation of its gamma-subunit. During steady-state catalysis, the three catalytic sites of F1 operate in a cooperative fashion such that at every instant each site is in a different conformation corresponding to a different stage along the catalytic cycle. Notwithstanding a large amount of biochemical and, recently, structural data, we still lack an understanding of how ATP hydrolysis in F1 is coupled to mechanical motion and how the catalytic sites achieve cooperativity during rotatory catalysis. In this publication, we report combined quantum mechanical/molecular mechanical simulations of ATP hydrolysis in the betaTP and betaDP catalytic sites of F1-ATPase. Our simulations reveal a dramatic change in the reaction energetics from strongly endothermic in betaTP to approximately equienergetic in betaDP. The simulations identify the responsible protein residues, the arginine finger alphaR373 being the most important one. Similar to our earlier study of betaTP, we find a multicenter proton relay mechanism to be the energetically most favorable hydrolysis pathway. The results elucidate how cooperativity between catalytic sites might be achieved by this remarkable molecular motor.

摘要

F1 - 腺苷三磷酸酶(ATP酶)是一种分子马达,它将储存在三磷酸腺苷(ATP)分子中的化学能转化为其γ亚基的机械旋转。在稳态催化过程中,F1的三个催化位点以协同方式运作,使得在任何时刻每个位点都处于与催化循环中不同阶段相对应的不同构象。尽管有大量的生化数据以及最近的结构数据,但我们仍然不清楚F1中的ATP水解是如何与机械运动耦合的,以及催化位点在旋转催化过程中是如何实现协同性的。在本出版物中,我们报告了对F1 - ATP酶的βTP和βDP催化位点中ATP水解的量子力学/分子力学联合模拟。我们的模拟揭示了反应能量学的巨大变化,从βTP中的强烈吸热到βDP中的近似等能。模拟确定了起作用的蛋白质残基,精氨酸指αR373是最重要的一个。与我们早期对βTP的研究类似,我们发现多中心质子传递机制是能量上最有利的水解途径。这些结果阐明了这种非凡的分子马达可能如何实现催化位点之间的协同性。

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