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Role of microangiopathy in diabetic cardiomyopathy
Adriana Adameova1, Naranjan S Dhalla
1Institute of Cardiovascular Sciences, Department of Physiology, Faculty of Medicine, University of Manitoba, St. Boniface Hospital Research, 351 Tache Avenue, Winnipeg, MB, R2H 2A6, Canada.
Insights
Diabetic cardiomyopathy stems from microvascular damage caused by hyperglycemia, leading to heart dysfunction. Understanding these microvascular defects is key to addressing heart failure in diabetic patients.
Area of Science:
- Cardiology
- Endocrinology
- Vascular Biology
Background:
- Diabetic heart disease is often linked to large vessel issues, but microvascular damage also significantly impacts cardiac structure and function.
- Hyperglycemia-induced microangiopathy involves endothelial dysfunction, hormonal alterations, and smooth muscle cell metabolic shifts, contributing to diabetic cardiomyopathy.
Purpose of the Study:
- To elucidate the diabetes-induced mechanisms of microvascular damage that lead to cardiac dysfunction.
- To highlight metabolic and neurohumoral disturbances promoting vascular homeostasis issues in diabetes.
- To compare signaling pathways involved in diabetic cardiomyopathy.
Main Methods:
- Review of literature on diabetes, microvascular dysfunction, and cardiac remodeling.
- Analysis of mechanisms including oxidative stress, cellular signaling, and gene transcription alterations.
- Discussion of pathways like nuclear factor κB and protein kinase C.
Main Results:
- Microvascular damage leads to myocardial hypoperfusion, reduced energy status, impaired calcium handling, apoptosis, and decreased contractility.
- Cardiac dysfunction manifests as myocardial dilatation, hypertrophy, and diastolic/systolic defects.
- Diabetes increases heart vulnerability to heart failure.
Conclusions:
- Microvascular abnormalities are critical in the pathogenesis of diabetic cardiomyopathy.
- Understanding these pathways can inform strategies to prevent or treat heart failure in diabetic individuals.
Abstract:
Although heart disease due to diabetes is mainly associated with complications of the large vessels, microvascular abnormalities are also considered to be involved in altering cardiac structure and function. Three major defects, such as endothelial dysfunction, alteration in the production/release of hormones, and shift in metabolism of smooth muscle cells, have been suggested to produce damage to the small arteries and capillaries (microangiopathy) due to hyperglycemia, and promote the development of diabetic cardiomyopathy. These factors may either act alone or in combination to produce oxidative stress as well as changes in cellular signaling and gene transcription, which in turn cause vasoconstriction and structural remodeling of the coronary vessels. Such alterations in microvasculature produce hypoperfusion of the myocardium and thereby lower the energy status resulting in changes in Ca(2+)-handling, apoptosis, and decreased cardiac contractile force. This article discusses diabetes-induced mechanisms of microvascular damage leading to cardiac dysfunction that is characterized by myocardial dilatation, cardiac hypertrophy as well as early diastolic and late systolic defects. Metabolic defects and changes in neurohumoral system due to diabetes, which promote disturbances in vascular homeostasis, are highlighted. In addition, increase in the vulnerability of the diabetic heart to the development of heart failure and the signaling pathways integrating nuclear factor κB and protein kinase C in diabetic cardiomyopathy are also described for comparison.
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