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Pathological Roles of Mitochondrial Oxidative Stress and Mitochondrial Dynamics in Cardiac Microvascular Ischemia/Reperfusion Injury

机译:线粒体氧化应激和线粒体动力学在心脏微血管缺血/再灌注损伤中的病理作用

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摘要

Mitochondria are key regulators of cell fate through controlling ATP generation and releasing pro-apoptotic factors. Cardiac ischemia/reperfusion (I/R) injury to the coronary microcirculation has manifestations ranging in severity from reversible edema to interstitial hemorrhage. A number of mechanisms have been proposed to explain the cardiac microvascular I/R injury including edema, impaired vasomotion, coronary microembolization, and capillary destruction. In contrast to their role in cell types with higher energy demands, mitochondria in endothelial cells primarily function in signaling cellular responses to environmental cues. It is clear that abnormal mitochondrial signatures, including mitochondrial oxidative stress, mitochondrial fission, mitochondrial fusion, and mitophagy, play a substantial role in endothelial cell function. While the pathogenic role of each of these mitochondrial alterations in the endothelial cells I/R injury remains complex, profiling of mitochondrial oxidative stress and mitochondrial dynamics in endothelial cell dysfunction may offer promising potential targets in the search for novel diagnostics and therapeutics in cardiac microvascular I/R injury. The objective of this review is to discuss the role of mitochondrial oxidative stress on cardiac microvascular endothelial cells dysfunction. Mitochondrial dynamics, including mitochondrial fission and fusion, are critically discussed to understand their roles in endothelial cell survival. Finally, mitophagy, as a degradative mechanism for damaged mitochondria, is summarized to figure out its contribution to the progression of microvascular I/R injury.
机译:线粒体是通过控制ATP生成和释放促凋亡因子来调节细胞命运的关键调节剂。冠状动脉微循环的心脏缺血/再灌注(I / R)损伤的严重程度从可逆性水肿到间质性出血不等。已经提出了许多机制来解释心脏微血管I / R损伤,包括水肿,血管运动受损,冠状动脉微栓塞和毛细血管破坏。与它们在具有更高能量需求的细胞类型中的作用相反,内皮细胞中的线粒体主要起信号化细胞对环境线索的反应的作用。显然,异常的线粒体特征包括线粒体氧化应激,线粒体裂变,线粒体融合和线粒体在内皮细胞功能中起重要作用。虽然这些线粒体改变在内皮细胞I / R损伤中的致病作用仍然很复杂,但线粒体氧化应激和线粒体动力学在内皮细胞功能障碍中的分布图可能为寻找心脏微血管I的新型诊断方法和治疗方法提供了有希望的潜在目标。 / R伤害。这篇综述的目的是讨论线粒体氧化应激在心脏微血管内皮细胞功能障碍中的作用。线粒体动力学,包括线粒体裂变和融合,被严格讨论以了解其在内皮细胞存活中的作用。最后,总结了线粒体作为线粒体受损的一种降解机制,以阐明其对微血管I / R损伤进展的贡献。

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