Department of Biochemistry and Biophysics, The Arrhenius Laboratories for Natural Sciences, Stockholm University, SE-106 91, Stockholm, Sweden.
Nat Commun. 2018 Aug 9;9(1):3187. doi: 10.1038/s41467-018-05615-5.
The respiratory chain in mitochondria is composed of membrane-bound proteins that couple electron transfer to proton translocation across the inner membrane. These charge-transfer reactions are regulated by the proton electrochemical gradient that is generated and maintained by the transmembrane charge transfer. Here, we investigate this feedback mechanism in cytochrome c oxidase in intact inner mitochondrial membranes upon generation of an electrochemical potential by hydrolysis of ATP. The data indicate that a reaction step that involves proton uptake to the catalytic site and presumably proton translocation is impaired by the potential, but electron transfer is not affected. These results define the order of electron and proton-transfer reactions and suggest that the proton pump is regulated by the transmembrane electrochemical gradient through control of internal proton transfer rather than by control of electron transfer.
线粒体中的呼吸链由膜结合蛋白组成,这些蛋白将电子传递与质子跨线粒体内膜的转移偶联。这些电荷转移反应受到质子电化学梯度的调节,质子电化学梯度由跨膜电荷转移产生和维持。在这里,我们研究了在水解 ATP 产生电化学势的情况下,完整的线粒体内膜中细胞色素 c 氧化酶中的这种反馈机制。数据表明,涉及质子向催化位点摄取和可能的质子转移的反应步骤受到电势的影响,但电子转移不受影响。这些结果定义了电子和质子转移反应的顺序,并表明质子泵通过控制内部质子转移而不是控制电子转移来调节跨膜电化学梯度。