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Published on: March 15, 2022
Progressive Decrease in Coronary Vascular Function Associated With Type 2 Diabetic Heart Disease
Rajesh Katare1, James T Pearson2,3, Jason Kar-Sheng Lew1
1Department of Physiology, HeartOtago, School of Biomedical Sciences, University of Otago, Dunedin, New Zealand.
Insights
Diabetic heart disease involves independent cardiac and coronary dysfunction, not solely linked to blood flow issues. The Rho-kinase pathway may be a key factor in diabetic heart disease progression.
Area of Science:
- Cardiovascular Research
- Diabetology
- Vascular Biology
Background:
- Diabetic heart disease (DHD) pathogenesis is not fully understood.
- Myocardial function relies on adequate coronary blood flow.
- Endothelial dysfunction in diabetes suggests early vascular involvement.
Purpose of the Study:
- To investigate if impaired coronary perfusion contributes to DHD or if cardiac and coronary dysfunction are independent diabetic pathologies.
- To determine the role of the Rho-kinase pathway in DHD.
Main Methods:
- Synchrotron radiation microangiography to assess coronary circulation in type-2 diabetic (db/db) and non-diabetic (db/+) mice.
- Vascular function assessment via vasodilatory responses to acetylcholine, sodium nitroprusside, and fasudil.
- Echocardiography for cardiac function and immunohistochemistry for eNOS and ROCK expression.
Main Results:
- Diabetic mice showed normal cardiac and coronary function at 8 weeks, but cardiac dysfunction by 16 weeks.
- Coronary perfusion remained normal until 24 weeks, when significant coronary vascular dysfunction was observed.
- Fasudil treatment restored coronary perfusion in diabetic mice by dilating constricted vessels, correlating with decreased eNOS and increased ROCK expression.
Conclusions:
- Cardiac and coronary dysfunction in DHD appear to originate independently in diabetes.
- The Rho-kinase pathway is implicated in the onset and progression of diabetic heart disease.
Abstract:
Background: The causal factors underpinning the onset and progression of diabetic heart disease (DHD) remain to be fully elucidated. Myocardial function is critically dependent on optimal coronary blood flow. Considering vascular disease occurs early in diabetes due to endothelial dysfunction, this study aimed to determine whether impaired coronary perfusion contributes to the origins of myocardial dysfunction in DHD, or whether coronary and cardiac dysfunction are independent pathologies associated with diabetes. Methods: Synchrotron radiation microangiography was used to image the coronary circulation of type-2 diabetic db/db and non-diabetic db/+ mice in vivo at 8, 16, and 24 weeks of age. We further assessed vascular function based on the vasodilatory responses to acetylcholine (ACh, 3 μg/kg/min), sodium nitroprusside (SNP, 5 μg/kg/min) and the Rho-kinase inhibitor, fasudil (20 mg/kg, i.v.). Cardiac function was assessed using echocardiography, and cardiac eNOS and ROCK expression were measured using immunohistochemistry. Results: Coronary and cardiac function were normal in 8-week-old diabetic mice. However, by 16 weeks of age, diabetic mice had advanced cardiac dysfunction. In comparison, normal coronary perfusion was preserved in diabetes until 24 weeks of age. Moreover, only the 24-week-old diabetic mice showed clear evidence of advanced coronary vascular dysfunction, based on (i) the absence of a vasodilatory response to ACh, and (ii) an exaggerated vasodilatory response to fasudil. Interestingly, fasudil also restored normal coronary perfusion in the 24-week-old diabetic heart by restoring blood flow to previously constricted vessels (diameter < 100 μm). Importantly, there was a ubiquitous decrease, and increase, in the cardiac expression of eNOS and ROCK, respectively. Conclusion: These results suggest that both cardiac and coronary dysfunction appear to have independent origins associated with diabetes and Rho-kinase pathway may be playing a role in the onset and progression of DHD.
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