Hurst Stephen, Hoek Jan, Sheu Shey-Shing
Center for Translational Medicine, Department of Medicine, Sidney Kimmel Medical College, Thomas Jefferson University, 1020 Locust Street, Suite 543D, Philadelphia, PA, 19107, USA.
Mitocare Center for Mitochondria Research, Department of Pathology Anatomy and Cell Biology, Thomas Jefferson University, Philadelphia, PA, 19107, USA.
J Bioenerg Biomembr. 2017 Feb;49(1):27-47. doi: 10.1007/s10863-016-9672-x. Epub 2016 Aug 6.
The mitochondrial permeability transition pore was originally described in the 1970's as a Ca activated pore and has since been attributed to the pathogenesis of many diseases. Here we evaluate how each of the current models of the pore complex fit to what is known about how Ca regulates the pore, and any insight that provides into the molecular identity of the pore complex. We also discuss the central role of Ca in modulating the pore's open probability by directly regulating processes, such as ATP/ADP balance through the tricarboxylic acid cycle, electron transport chain, and mitochondrial membrane potential. We review how Ca influences second messengers such as reactive oxygen/nitrogen species production and polyphosphate formation. We discuss the evidence for how Ca regulates post-translational modification of cyclophilin D including phosphorylation by glycogen synthase kinase 3 beta, deacetylation by sirtuins, and oxidation/ nitrosylation of key residues. Lastly we introduce a novel view into how Ca activated proteolysis through calpains in the mitochondria may be a driver of sustained pore opening during pathologies such as ischemia reperfusion injury.
线粒体通透性转换孔最初在20世纪70年代被描述为一种钙激活孔,此后被认为与多种疾病的发病机制有关。在这里,我们评估当前孔复合体的每种模型如何与已知的钙调节孔的方式相契合,以及这对孔复合体的分子身份有何启示。我们还讨论了钙在通过直接调节三羧酸循环、电子传递链和线粒体膜电位等过程来调节ATP/ADP平衡等过程中,对调节孔的开放概率的核心作用。我们回顾了钙如何影响活性氧/氮物种产生和多聚磷酸盐形成等第二信使。我们讨论了钙调节亲环素D的翻译后修饰的证据,包括糖原合酶激酶3β的磷酸化、去乙酰化酶的去乙酰化以及关键残基的氧化/亚硝基化。最后,我们提出了一种新的观点,即线粒体中钙激活的钙蛋白酶解如何可能是缺血再灌注损伤等病理过程中孔持续开放的驱动因素。