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Published on: June 28, 2019
Thrombosis in the Coronary Microvasculature Impairs Cardiac Relaxation and Induces Diastolic Dysfunction
Paul Rouault1, Sarah Guimbal1, Lauriane Cornuault1
1Institut National de la Santé et de la Recherche Médicale (INSERM) U1034, Biology of Cardiovascular Diseases, University of Bordeaux, Pessac, France (P.R., S.G., L.C., C.B., N.F., P.A., C.C., A.-P.G., T.C., M.-A.R.).
Insights
Microvascular thrombosis contributes to heart failure with preserved ejection fraction in type 2 diabetes. Aspirin therapy mitigated diastolic dysfunction and exercise intolerance in mouse models.
Area of Science:
- Cardiovascular Research
- Diabetology
- Molecular Biology
Background:
- Heart failure with preserved ejection fraction (HFpEF) is linked to endothelial dysfunction in cardiac microvessels.
- Type 2 diabetes is associated with HFpEF, suggesting a need to understand underlying mechanisms.
Purpose of the Study:
- To investigate molecular and cellular mechanisms of cardiac microvessel disease and diastolic dysfunction in type 2 diabetes.
- To identify key molecular players and therapeutic targets for HFpEF in diabetic conditions.
Main Methods:
- Utilized Leprdb/db mice as a model for type 2 diabetes and HFpEF.
- Examined Dhh (desert hedgehog)-deficient mice to assess the impact of impaired hedgehog signaling on cardiac function.
- Investigated the role of microvascular thrombosis and the effects of aspirin therapy.
Main Results:
- Dhh-deficient mice exhibited diastolic dysfunction, reduced exercise tolerance, and cardiac microvessel prothrombotic changes.
- Impaired cardiac relaxation in Dhh-deficient mice correlated with decreased phospholamban phosphorylation.
- Aspirin treatment ameliorated diastolic dysfunction and exercise intolerance in both Dhh-deficient and Leprdb/db mice, confirming the role of thrombosis.
Conclusions:
- Microvascular thrombosis is implicated in the pathophysiology of heart failure with preserved ejection fraction.
- Targeting microvascular thrombosis, potentially with aspirin, may offer a therapeutic strategy for HFpEF in type 2 diabetes.
Background:
Heart failure with preserved ejection fraction is proposed to be caused by endothelial dysfunction in cardiac microvessels. Our goal was to identify molecular and cellular mechanisms underlying the development of cardiac microvessel disease and diastolic dysfunction in the setting of type 2 diabetes.
Methods:
We used Leprdb/db (leptin receptor-deficient) female mice as a model of type 2 diabetes and heart failure with preserved ejection fraction and identified Hhipl1 (hedgehog interacting protein-like 1), which encodes for a decoy receptor for HH (hedgehog) ligands as a gene upregulated in the cardiac vascular fraction of diseased mice.
Results:
We then used Dhh (desert HH)-deficient mice to investigate the functional consequences of impaired HH signaling in the adult heart. We found that Dhh-deficient mice displayed increased end-diastolic pressure while left ventricular ejection fraction was comparable to that of control mice. This phenotype was associated with a reduced exercise tolerance in the treadmill test, suggesting that Dhh-deficient mice do present heart failure. At molecular and cellular levels, impaired cardiac relaxation in DhhECKO mice was associated with a significantly decreased PLN (phospholamban) phosphorylation on Thr17 (threonine 17) and an alteration of sarcomeric shortening ex vivo. Besides, as expected, Dhh-deficient mice exhibited phenotypic changes in their cardiac microvessels including a prominent prothrombotic phenotype. Importantly, aspirin therapy prevented the occurrence of both diastolic dysfunction and exercise intolerance in these mice. To confirm the critical role of thrombosis in the pathophysiology of diastolic dysfunction, we verified Leprdb/db also displays increased cardiac microvessel thrombosis. Moreover, consistently, with Dhh-deficient mice, we found that aspirin treatment decreased end-diastolic pressure and improved exercise tolerance in Leprdb/db mice.
Conclusions:
Altogether, these results demonstrate that microvessel thrombosis may participate in the pathophysiology of heart failure with preserved ejection fraction.
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