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呼吸链中的电子竞争过程:调节机制与生理功能。

Electron competition process in respiratory chain: regulatory mechanisms and physiological functions.

作者信息

Rigoulet Michel, Mourier Arnaud, Galinier Anne, Casteilla Louis, Devin Anne

机构信息

Université Bordeaux 2, 1 rue Camille Saint Saëns, 33077 Bordeaux Cedex, France.

出版信息

Biochim Biophys Acta. 2010 Jun-Jul;1797(6-7):671-7. doi: 10.1016/j.bbabio.2010.01.030. Epub 2010 Feb 1.

Abstract

In mitochondria isolated from the yeast Saccharomyces cerevisiae, under non-phosphorylating conditions, we have previously shown that there is a right of way for electrons coming from the external NADH dehydrogenase, Nde1p. In this work, we show that the electron competition process is identical under more physiological conditions i.e. oxidative phosphorylation. Such a competition generates a priority for cytosolic NADH reoxidation. Furthermore, this electron competition process is associated with an energy wastage (the "active leak") that allows an increase in redox equivalent oxidation when the redox pressure increases. When this redox pressure is decreased, i.e. under phosphorylating conditions, most of this energy wastage is alleviated. By studying mutant strains affected either in respiratory chain supramolecular organization or in electron competition activity, we show that the respiratory chain supramolecular organization is not responsible for the electron competition processes. Moreover, we show two distinct relationships between the respiratory rate and the quinone redox state that seem to indicate two quinone pools that are involved in the electron right of way. Indeed, the more reduced pool would be associated to the electron right of way for the external dehydrogenases whereas the less reduced pool would be associated to the electron right of way for the internal dehydrogenases.

摘要

在从酿酒酵母中分离出的线粒体中,在非磷酸化条件下,我们之前已经表明,来自外部NADH脱氢酶Nde1p的电子存在一条优先路径。在这项工作中,我们表明,在更接近生理状态的条件下,即氧化磷酸化过程中,电子竞争过程是相同的。这种竞争产生了胞质NADH再氧化的优先性。此外,这种电子竞争过程与能量浪费(“活性泄漏”)相关,当氧化还原压力增加时,这种能量浪费会使氧化还原当量的氧化增加。当这种氧化还原压力降低时,即在磷酸化条件下,大部分这种能量浪费会得到缓解。通过研究在呼吸链超分子组织或电子竞争活性方面受到影响的突变菌株,我们表明呼吸链超分子组织与电子竞争过程无关。此外,我们展示了呼吸速率与醌氧化还原状态之间的两种不同关系,这似乎表明有两个醌池参与了电子优先路径。实际上,还原程度较高的池与外部脱氢酶的电子优先路径相关,而还原程度较低的池与内部脱氢酶的电子优先路径相关。

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