Mitochondrial dynamics, mitophagy and cardiovascular disease

粒体自噬 线粒体融合 线粒体 线粒体分裂 品脱1 自噬 细胞生物学 生物 心肌细胞 生物能学 心功能曲线 心力衰竭 心脏病学 医学 线粒体生物发生 内科学 线粒体DNA 细胞凋亡 基因 生物化学
作者
C. Vásquez,Ivonne García‐Carvajal,Christian Pennanen,Valentina Parra,Joseph A. Hill,Beverly A. Rothermel,Sergio Lavandero
出处
期刊:The Journal of Physiology [Wiley]
卷期号:594 (3): 509-525 被引量:481
标识
DOI:10.1113/jp271301
摘要

Abstract Cardiac hypertrophy is often initiated as an adaptive response to haemodynamic stress or myocardial injury, and allows the heart to meet an increased demand for oxygen. Although initially beneficial, hypertrophy can ultimately contribute to the progression of cardiac disease, leading to an increase in interstitial fibrosis and a decrease in ventricular function. Metabolic changes have emerged as key mechanisms involved in the development and progression of pathological remodelling. As the myocardium is a highly oxidative tissue, mitochondria play a central role in maintaining optimal performance of the heart. ‘Mitochondrial dynamics’, the processes of mitochondrial fusion, fission, biogenesis and mitophagy that determine mitochondrial morphology, quality and abundance have recently been implicated in cardiovascular disease. Studies link mitochondrial dynamics to the balance between energy demand and nutrient supply, suggesting that changes in mitochondrial morphology may act as a mechanism for bioenergetic adaptation during cardiac pathological remodelling. Another critical function of mitochondrial dynamics is the removal of damaged and dysfunctional mitochondria through mitophagy, which is dependent on the fission/fusion cycle. In this article, we discuss the latest findings regarding the impact of mitochondrial dynamics and mitophagy on the development and progression of cardiovascular pathologies, including diabetic cardiomyopathy, atherosclerosis, damage from ischaemia–reperfusion, cardiac hypertrophy and decompensated heart failure. We will address the ability of mitochondrial fusion and fission to impact all cell types within the myocardium, including cardiac myocytes, cardiac fibroblasts and vascular smooth muscle cells. Finally, we will discuss how these findings can be applied to improve the treatment and prevention of cardiovascular diseases. image
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