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利用生理底物刺激完整的大鼠心脏线粒体的呼吸和 NAD(P)H 合成的作用并不能解释体内呼吸控制。

Stimulatory effects of calcium on respiration and NAD(P)H synthesis in intact rat heart mitochondria utilizing physiological substrates cannot explain respiratory control in vivo.

机构信息

Biotechnology and Bioengineering Center and Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin 53226.

Biotechnology and Bioengineering Center and Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin 53226.

出版信息

J Biol Chem. 2011 Sep 2;286(35):30816-30822. doi: 10.1074/jbc.M111.242529. Epub 2011 Jul 11.

Abstract

Mitochondrial TCA cycle dehydrogenase enzymes have been shown to be stimulated by Ca(2+) under various substrate and ADP incubation conditions in an attempt to determine and understand the role of Ca(2+) in maintaining energy homeostasis in working hearts. In this study, we tested the hypothesis that, at physiological temperature and 1 mM extramitochondrial free magnesium, Ca(2+) can stimulate the overall mitochondrial NAD(P)H generation flux in rat heart mitochondria utilizing pyruvate and malate as substrates at both subsaturating and saturating concentrations. In both cases, we found that, in the physiological regime of mitochondrial oxygen consumption observed in the intact animal and in the physiological range of cytosolic Ca(2+) concentration averaged per beat, Ca(2+) had no observable stimulatory effect. A modest apparent stimulatory effect (22-27%) was observable at supraphysiological maximal ADP-stimulated respiration at 2.5 mM initial phosphate. The stimulatory effects observed over the physiological Ca(2+) range are not sufficient to make a significant contribution to the control of oxidative phosphorylation in the heart in vivo.

摘要

已经证明,在各种底物和 ADP 孵育条件下,钙离子可以刺激线粒体三羧酸循环脱氢酶的活性,试图确定和理解钙离子在维持工作心脏能量平衡中的作用。在这项研究中,我们检验了一个假设,即在生理温度和 1mM 细胞外游离镁的条件下,钙离子可以刺激大鼠心脏线粒体利用丙酮酸和苹果酸作为底物在亚饱和和饱和浓度下的整体线粒体 NAD(P)H 生成通量。在这两种情况下,我们发现,在完整动物中观察到的线粒体耗氧量的生理状态下,以及在每个心动周期平均的细胞浆钙离子浓度的生理范围内,钙离子没有观察到的刺激作用。在 2.5mM 初始磷酸盐的超高生理最大 ADP 刺激呼吸下,可以观察到适度的明显刺激作用(22-27%)。在生理钙离子范围内观察到的刺激作用不足以对体内心脏氧化磷酸化的控制做出重要贡献。

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