Protective Mechanisms of Mitochondria and Heart Function in Diabetes

被引:58
作者
Aon, Miguel A. [1 ]
Tocchetti, Carlo G. [1 ]
Bhatt, Niraj [1 ]
Paolocci, Nazareno [1 ]
Cortassa, Sonia [1 ]
机构
[1] Johns Hopkins Univ Sch Med, Div Cardiol, Baltimore, MD USA
基金
美国国家卫生研究院;
关键词
FATTY-ACID-METABOLISM; MANGANESE SUPEROXIDE-DISMUTASE; ALDOSE REDUCTASE INHIBITOR; FLUX CONTROL ANALYSIS; REDOX-OPTIMIZED ROS; RAT SKELETAL-MUSCLE; OXIDATIVE STRESS; REACTIVE OXYGEN; INSULIN-RESISTANCE; CONTRACTILE DYSFUNCTION;
D O I
10.1089/ars.2014.6123
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Significance: The heart depends on continuous mitochondrial ATP supply and maintained redox balance to properly develop force, particularly under increased workload. During diabetes, however, myocardial energetic-redox balance is perturbed, contributing to the systolic and diastolic dysfunction known as diabetic cardiomyopathy (DC). Critical Issues: How these energetic and redox alterations intertwine to influence the DC progression is still poorly understood. Excessive bioavailability of both glucose and fatty acids (FAs) play a central role, leading, among other effects, to mitochondrial dysfunction. However, where and how this nutrient excess affects mitochondrial and cytoplasmic energetic/redox crossroads remains to be defined in greater detail. Recent Advances: We review how high glucose alters cellular redox balance and affects mitochondrial DNA. Next, we address how lipid excess, either stored in lipid droplets or utilized by mitochondria, affects performance in diabetic hearts by influencing cardiac energetic and redox assets. Finally, we examine how the reciprocal energetic/redox influence between mitochondrial and cytoplasmic compartments shapes myocardial mechanical activity during the course of DC, focusing especially on the glutathione and thioredoxin systems. Future Directions: Protecting mitochondria from losing their ability to generate energy, and to control their own reactive oxygen species emission is essential to prevent the onset and/or to slow down DC progression. We highlight mechanisms enforced by the diabetic heart to counteract glucose/FAs surplus-induced damage, such as lipid storage, enhanced mitochondria-lipid droplet interaction, and upregulation of key antioxidant enzymes. Learning more on the nature and location of mechanisms sheltering mitochondrial functions would certainly help in further optimizing therapies for human DC. Antioxid. Redox Signal. 22, 1563-1586.
引用
收藏
页码:1563 / 1586
页数:24
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