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三磷酸腺苷抑制细胞色素 c 氧化酶可减少线粒体 ROS 的产生。

Cytochrome c Oxidase Inhibition by ATP Decreases Mitochondrial ROS Production.

机构信息

Mitochondrial Bioenergetics' Lab, Department of Heart Surgery, University Hospital of Giessen and Marburg (UKGM), Baldingerstrasse 1, D-35043 Marburg, Germany.

Faculty of Mathematics and Natural Sciences, University of Groningen, Nijenborgh 49747 AG, 9713 Groningen, The Netherlands.

出版信息

Cells. 2022 Mar 14;11(6):992. doi: 10.3390/cells11060992.

Abstract

This study addresses the eventual consequence of cytochrome c oxidase (CytOx) inhibition by ATP at high ATP/ADP ratio in isolated rat heart mitochondria. Earlier, it has been demonstrated that the mechanism of allosteric ATP inhibition of CytOx is one of the key regulations of mitochondrial functions. It is relevant that aiming to maintain a high ATP/ADP ratio for the measurement of CytOx activity effectuating the enzymatic inhibition as well as mitochondrial respiration, optimal concentration of mitochondria is critically important. Likewise, only at this concentration, were the differences in ΔΨ and ROS concentrations measured under various conditions significant. Moreover, when CytOx activity was inhibited in the presence of ATP, mitochondrial respiration and ΔΨ both remained static, while the ROS production was markedly decreased. Consubstantial results were found when the electron transport chain was inhibited by antimycin A, letting only CytOx remain functional to support the energy production. This seems to corroborate that the decrease in mitochondrial ROS production is solely the effect of ATP binding to CytOx which results in static respiration as well as membrane potential.

摘要

本研究探讨了在分离的大鼠心脏线粒体中高 ATP/ADP 比下 ATP 对细胞色素 c 氧化酶(CytOx)抑制的最终后果。先前已经证明,CytOx 的变构 ATP 抑制的机制是线粒体功能的关键调节之一。重要的是,为了维持高 ATP/ADP 比以测量 CytOx 活性,从而实现酶抑制以及线粒体呼吸,线粒体的最佳浓度至关重要。同样,只有在该浓度下,在各种条件下测量的 ΔΨ 和 ROS 浓度的差异才具有统计学意义。此外,当存在 ATP 时抑制 CytOx 活性时,线粒体呼吸和 ΔΨ 均保持静态,而 ROS 生成明显减少。当电子传递链被抗霉素 A 抑制时,发现了相同的结果,仅让 CytOx 保持功能以支持能量产生。这似乎证实了线粒体 ROS 生成的减少仅是 ATP 与 CytOx 结合的结果,导致呼吸和膜电位均保持静态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92f6/8946758/e714d77d5248/cells-11-00992-g001.jpg

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