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细菌ATP合酶中F(0) 马达的功能不对称性。

Functional asymmetry of the F(0) motor in bacterial ATP synthases.

作者信息

Wiedenmann Alexander, Dimroth Peter, von Ballmoos Christoph

机构信息

Institut für Mikrobiologie, ETH Zürich, Zürich, Switzerland.

出版信息

Mol Microbiol. 2009 Apr;72(2):479-90. doi: 10.1111/j.1365-2958.2009.06658.x. Epub 2009 Mar 6.

Abstract

F(1)F(0) ATP synthases use the electrochemical potential of H(+) or Na(+) across biological membranes to synthesize ATP by a rotary mechanism. In bacteria, the enzymes can act in reverse as ATP-driven ion pumps creating the indispensable membrane potential. Here, we demonstrate that the F(0) parts of a Na(+)- and H(+)-dependent enzyme display major asymmetries with respect to their mode of operation, reflected by the requirement of approximately 100 times higher Na(+) or H(+) concentrations for the synthesis compared with the hydrolysis of ATP. A similar asymmetry is observed during ion transport through isolated F(0) parts, indicating different affinities for the binding sites in the a/c interface. Together with further data, we propose a model that provides a rationale for a differential usage of membrane potential and ion gradient during ATP synthesis as observed experimentally. The functional asymmetry might also reflect an important property of the ATP synthesis mechanism in vivo. In Escherichia coli, we observed respiratory chain-driven ATP production at pH 7-8, while P-site pH values < 6.5 were required for ATP synthesis in vitro. This discrepancy is discussed with respect to the hypothesis that during respiration lateral proton diffusion could lead to significant acidification at the membrane surface.

摘要

F(1)F(0) ATP合酶利用跨生物膜的H(+)或Na(+)的电化学势,通过旋转机制合成ATP。在细菌中,这些酶可以反向作为ATP驱动的离子泵,产生不可或缺的膜电位。在此,我们证明,一种依赖Na(+)和H(+)的酶的F(0)部分在其运作模式上表现出主要的不对称性,这体现在与ATP水解相比,合成所需的Na(+)或H(+)浓度大约高100倍。在通过分离的F(0)部分进行离子运输的过程中也观察到类似的不对称性,这表明在a/c界面中对结合位点具有不同的亲和力。结合进一步的数据,我们提出了一个模型,该模型为实验中观察到的ATP合成过程中膜电位和离子梯度的差异使用提供了理论依据。功能上的不对称性也可能反映了体内ATP合成机制的一个重要特性。在大肠杆菌中,我们观察到在pH 7 - 8时由呼吸链驱动的ATP产生,而体外ATP合成需要P位点pH值< 6.5。关于呼吸过程中横向质子扩散可能导致膜表面显著酸化的假设,对这种差异进行了讨论。

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