线粒体Ca对基质氧化还原信号的调节(2)。

J. Santo-Domingo, A. Wiederkehr, U. De Marchi
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引用次数: 27

摘要

线粒体感知、塑造和整合信号,因此在细胞信号转导中发挥核心作用。Ca(2+)波和氧化还原反应是线粒体调节的两种细胞内信号。线粒体Ca(2+)转运对代谢和细胞命运具有重要的生理病理意义。尽管其重要性,参与线粒体钙(2+)运输的蛋白质的分子性质直到最近才被揭示出来。线粒体Ca(2+)通过激活基质脱氢酶和下游刺激呼吸链促进能量代谢。这些变化也改变了线粒体NAD(P)H/NAD(P)(+)比值,但同时会增加活性氧(ROS)的产生。还原等价物和活性氧对线粒体氧化还原状态有相反的影响,这很难分析。随着基因编码线粒体氧化还原敏感传感器的发展,实时监测基质硫醇氧化还原动力学已经成为可能。线粒体Ca(2+)转运体分子性质的发现,结合新型氧化还原传感器的应用,揭示了线粒体Ca(2+)和氧化还原信号之间的复杂关系及其对细胞功能的影响。在这篇综述中,我们描述了线粒体Ca(2+)处理,重点介绍了一些新发现的参与线粒体Ca(2+)摄取和释放的蛋白质。我们进一步讨论了我们最近的发现,揭示了线粒体Ca(2+)如何影响基质氧化还原状态。因此,线粒体Ca(2+)能够调节与正常生理和疾病相关的许多线粒体氧化还原调节过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modulation of the matrix redox signaling by mitochondrial Ca(2.).
Mitochondria sense, shape and integrate signals, and thus function as central players in cellular signal transduction. Ca(2+) waves and redox reactions are two such intracellular signals modulated by mitochondria. Mitochondrial Ca(2+) transport is of utmost physio-pathological relevance with a strong impact on metabolism and cell fate. Despite its importance, the molecular nature of the proteins involved in mitochondrial Ca(2+) transport has been revealed only recently. Mitochondrial Ca(2+) promotes energy metabolism through the activation of matrix dehydrogenases and down-stream stimulation of the respiratory chain. These changes also alter the mitochondrial NAD(P)H/NAD(P)(+) ratio, but at the same time will increase reactive oxygen species (ROS) production. Reducing equivalents and ROS are having opposite effects on the mitochondrial redox state, which are hard to dissect. With the recent development of genetically encoded mitochondrial-targeted redox-sensitive sensors, real-time monitoring of matrix thiol redox dynamics has become possible. The discoveries of the molecular nature of mitochondrial transporters of Ca(2+) combined with the utilization of the novel redox sensors is shedding light on the complex relation between mitochondrial Ca(2+) and redox signals and their impact on cell function. In this review, we describe mitochondrial Ca(2+) handling, focusing on a number of newly identified proteins involved in mitochondrial Ca(2+) uptake and release. We further discuss our recent findings, revealing how mitochondrial Ca(2+) influences the matrix redox state. As a result, mitochondrial Ca(2+) is able to modulate the many mitochondrial redox-regulated processes linked to normal physiology and disease.
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