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Mitochondrial reprogramming through cardiac oxygen sensors in ischaemic heart disease.

机译:在缺血性心脏病中通过心脏氧传感器进行线粒体重编程。

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Under hypoxic conditions, mitochondria can represent a threat to the cell because of their capacity to generate toxic reactive oxygen species (ROS). However, cardiomyocytes are equipped with an oxygen-sensing pathway that involves prolyl hydroxylase oxygen sensors and hypoxia-inducible factors (HIFs), which induces a tightly regulated programme to keep ischaemic mitochondrial activity under control. The aim of this review is to provide an update on the pathways leading to mitochondrial reprogramming, which occurs in the myocardium during ischaemia, with particular emphasis on those induced by HIF activation. We start by studying the mechanisms of mitochondrial damage during ischaemia and upon reperfusion, highlighting the importance of the formation of the mitochondrial permeability transition pore during reperfusion and its consequences for cardiomyocyte survival. Next, we analyse hypoxia-induced metabolic reprogramming through HIF and its important consequences for mitochondrial bioenergetics, as well as the phenomenon known as the hibernating myocardium. Subsequently, we examine the mechanisms underlying ischaemic preconditioning, focusing, in particular, on those that involve the HIF pathway, such as adenosine signalling, sub-lethal ROS generation, and nitric oxide production. Finally, the role of the mitochondrial uncoupling proteins in ischaemia tolerance is discussed.
机译:在缺氧条件下,线粒体可能产生对细胞的威胁,因为线粒体能够产生有毒的活性氧(ROS)。但是,心肌细胞配备了一个氧感应途径,该途径涉及脯氨酰羟化酶氧传感器和缺氧诱导因子(HIFs),从而诱导了严格控制的程序,以控制缺血性线粒体活性。这篇综述的目的是提供导致线粒体重编程的途径的更新,其在局部缺血期间发生在心肌中,特别着重于由HIF激活诱导的那些。我们从研究缺血和再灌注时线粒体损伤的机制开始,强调了再灌注过程中线粒体通透性过渡孔的形成及其对心肌细胞存活的影响的重要性。接下来,我们通过HIF分析缺氧诱导的代谢重编程及其对线粒体生物能学的重要影响,以及称为冬眠心肌的现象。随后,我们研究了缺血预处理的潜在机制,特别是专注于涉及HIF途径的机制,例如腺苷信号传导,亚致死性ROS生成和一氧化氮生成。最后,讨论了线粒体解偶联蛋白在局部缺血耐受中的作用。

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