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Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Diabetic cardiomyopathy: understanding the molecular and cellular basis to progress in diagnosis and treatment
Inês Falcão-Pires1, Adelino F Leite-Moreira
1Department of Physiology and Cardiothoracic Surgery, Cardiovascular R&D Unit, University of Porto, Porto, Portugal.
Insights
Diabetic cardiomyopathy is heart dysfunction in diabetes, independent of other causes. Understanding its molecular mechanisms, like hyperglycemia-induced oxidative stress, is key to developing new treatments.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- Diabetes mellitus is a major risk factor for congestive heart failure.
- Diabetic cardiomyopathy (DCM) is ventricular dysfunction in diabetics, unrelated to coronary artery disease or hypertension.
- DCM progresses through subclinical stages, from diastolic to systolic dysfunction, ultimately leading to heart failure.
Purpose of the Study:
- To elucidate the molecular and cellular pathophysiologic mechanisms of diabetic cardiomyopathy.
- To describe structural changes associated with DCM.
- To explore potential therapeutic strategies against DCM.
Main Methods:
- Review of existing literature on diabetic cardiomyopathy.
- Analysis of molecular and cellular pathways involved in DCM.
- Extrapolation of knowledge from animal models due to limited human myocardial tissue.
Main Results:
- Hyperglycemia drives DCM via oxidative stress, abnormal metabolism, and apoptosis.
- Key contributors include left ventricular hypertrophy, insulin resistance, and fibrosis.
- Advanced glycation end-products and connective tissue growth factor increase cardiac stiffness.
Conclusions:
- Diabetic cardiomyopathy involves complex molecular and cellular derangements.
- Hyperglycemia-induced oxidative stress and metabolic dysfunction are central to DCM pathogenesis.
- Further translational research is needed to develop effective therapies for DCM.
Abstract:
Diabetes mellitus is an important and prevalent risk factor for congestive heart failure. Diabetic cardiomyopathy has been defined as ventricular dysfunction that occurs in diabetic patients independent of a recognized cause such as coronary artery disease or hypertension. The disease course consists of a hidden subclinical period, during which cellular structural insults and abnormalities lead initially to diastolic dysfunction, later to systolic dysfunction, and eventually to heart failure. Left ventricular hypertrophy, metabolic abnormalities, extracellular matrix changes, small vessel disease, cardiac autonomic neuropathy, insulin resistance, oxidative stress, and apoptosis are the most important contributors to diabetic cardiomyopathy onset and progression. Hyperglycemia is a major etiological factor in the development of diabetic cardiomyopathy. It increases the levels of free fatty acids and growth factors and causes abnormalities in substrate supply and utilization, calcium homeostasis, and lipid metabolism. Furthermore, it promotes excessive production and release of reactive oxygen species, which induces oxidative stress leading to abnormal gene expression, faulty signal transduction, and cardiomyocytes apoptosis. Stimulation of connective tissue growth factor, fibrosis, and the formation of advanced glycation end-products increase the stiffness of the diabetic hearts. Despite all the current information on diabetic cardiomyopathy, translational research is still scarce due to limited human myocardial tissue and most of our knowledge is extrapolated from animals. This paper aims to elucidate some of the molecular and cellular pathophysiologic mechanisms, structural changes, and therapeutic strategies that may help struggle against diabetic cardiomyopathy.
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