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Updated: Aug 16, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Molecular targets of diabetic cardiovascular complications
Fatima K Ahmad1, Zhiheng He, George L King
1Research Division, Joslin Diabetes Center, Harvard Medical School, Boston, MA 02115, USA.
Abstract:
Both the macro- and microvascular complications adversely affect the life quality of patients with diabetes and have been the leading cause of mortality and morbidity in this population. With the advancement of technologies in biomedical research, we have gained a great deal of understanding of the mechanisms underlying these complications. While euglycemic control still remains the best strategy, it is often difficult to maintain at a level that can completely prevent the vascular complications. Therefore, it is necessary to use the processes leading to vascular dysfunction as a framework for designing novel molecular therapeutic targets. Several of the mechanisms by which diabetes induces vascular complications include increased flux through the polyol pathway, increased oxidative stress, activation of protein kinase C (PKC), vascular inflammation, and abnormal expression and actions of cytokines in the vasculature. Many of the therapies that target these pathways have proven successful in experimental models of diabetic complications. However, clinical studies using these treatments have mainly yielded inconclusive results. The pathogenesis of diabetic vascular complications and results from animal studies and key clinical studies are reviewed here.
Insights
Diabetic vascular complications significantly reduce quality of life. While targeting pathways like oxidative stress shows promise in models, clinical results for these therapies remain inconclusive.
Area of Science:
- Biomedical research
- Vascular biology
- Diabetology
Background:
- Diabetic macro- and microvascular complications are leading causes of mortality and morbidity.
- Euglycemic control is challenging to maintain for complete prevention of vascular issues.
Purpose of the Study:
- To review the pathogenesis of diabetic vascular complications.
- To analyze molecular therapeutic targets and their clinical outcomes.
Main Methods:
- Review of mechanisms including polyol pathway flux, oxidative stress, protein kinase C (PKC) activation, inflammation, and cytokine actions.
- Analysis of experimental models and key clinical studies.
Main Results:
- Several molecular pathways contribute to diabetic vascular dysfunction.
- Therapies targeting these pathways are successful in experimental models.
- Clinical studies of these targeted therapies have yielded inconclusive results.
Conclusions:
- Understanding diabetic vascular complication mechanisms is crucial for novel therapeutic strategies.
- Despite preclinical success, translating targeted therapies to clinical practice remains a challenge.
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