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Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Mechanisms of subcellular remodeling in heart failure due to diabetes
Naranjan S Dhalla1, Nobuakira Takeda, Delfin Rodriguez-Leyva
1Department of Physiology, Faculty of Medicine, Institute of Cardiovascular Sciences, St. Boniface Hospital Research, University of Manitoba, 351 Tache Avenue, Winnipeg, MB, R2H 2A6, Canada, nsdhalla@sbrc.ca.
Abstract:
Diabetic cardiomyopathy is not only associated with heart failure but there also occurs a loss of the positive inotropic effect of different agents. It is now becoming clear that cardiac dysfunction in chronic diabetes is intimately involved with Ca(2+)-handling abnormalities, metabolic defects and impaired sensitivity of myofibrils to Ca(2+) in cardiomyocytes. On the other hand, loss of the inotropic effect in diabetic myocardium is elicited by changes in signal transduction mechanisms involving hormone receptors and depressions in phosphorylation of various membrane proteins. Ca(2+)-handling abnormalities in the diabetic heart occur mainly due to defects in sarcolemmal Na(+)-K(+) ATPase, Na(+)-Ca(2+) exchange, Na(+)-H(+) exchange, Ca(2+)-channels and Ca(2+)-pump activities as well as changes in sarcoplasmic reticular Ca(2+)-uptake and Ca(2+)-release processes; these alterations may lead to the occurrence of intracellular Ca(2+) overload. Metabolic defects due to insulin deficiency or ineffectiveness as well as hormone imbalance in diabetes are primarily associated with a shift in substrate utilization and changes in the oxidation of fatty acids in cardiomyocytes. Mitochondria initially seem to play an adaptive role in serving as a Ca(2+) sink, but the excessive utilization of long-chain fatty acids for a prolonged period results in the generation of oxidative stress and impairment of their function in the diabetic heart. In view of the activation of sympathetic nervous system and renin-angiotensin system as well as platelet aggregation, endothelial dysfunction and generation of oxidative stress in diabetes and blockade of their effects have been shown to attenuate subcellular remodeling, metabolic derangements and signal transduction abnormalities in the diabetic heart. On the basis of these observations, it is suggested that oxidative stress and subcellular remodeling due to hormonal imbalance and metabolic defects play a critical role in the genesis of heart failure during the development of diabetic cardiomyopathy.
Insights
Diabetic cardiomyopathy involves heart failure linked to calcium handling issues and metabolic problems. Oxidative stress and cellular changes are key factors in its development.
Area of Science:
- Cardiology
- Endocrinology
- Biochemistry
Background:
- Diabetic cardiomyopathy is a significant complication of diabetes mellitus, leading to heart failure.
- Cardiac dysfunction in diabetes is characterized by calcium (Ca2+) handling abnormalities, metabolic defects, and impaired myofibril sensitivity to Ca2+.
- Loss of the positive inotropic effect in diabetic hearts is associated with altered signal transduction and protein phosphorylation.
Purpose of the Study:
- To elucidate the mechanisms underlying cardiac dysfunction in diabetic cardiomyopathy.
- To investigate the roles of Ca2+-handling, metabolic derangements, and oxidative stress in the development of diabetic heart failure.
Main Methods:
- The study reviews existing literature on cellular and molecular mechanisms in diabetic cardiomyopathy.
- Analysis of Ca2+-handling defects, including sarcolemmal and sarcoplasmic reticular functions.
- Evaluation of metabolic alterations, substrate utilization, and mitochondrial function in diabetic hearts.
Main Results:
- Diabetic hearts exhibit impaired Ca2+ handling due to defects in Na+-K+ ATPase, Na+-Ca2+ exchange, Ca2+ channels, and Ca2+ pump activities.
- Metabolic defects involve altered substrate utilization and fatty acid oxidation, leading to oxidative stress and mitochondrial dysfunction.
- Activation of the sympathetic nervous system and renin-angiotensin system contributes to cardiac remodeling and dysfunction.
Conclusions:
- Intracellular Ca2+ overload and impaired cardiomyocyte function are central to diabetic cardiomyopathy.
- Oxidative stress and subcellular remodeling, driven by hormonal imbalance and metabolic defects, are critical in the pathogenesis of heart failure in diabetic cardiomyopathy.
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