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Published on: June 14, 2016
Increased Capillary Permeability in Heart Induces Diastolic Dysfunction Independently of Inflammation, Fibrosis, or
Alice Abelanet1, Marion Camoin1,2, Sebastien Rubin1,2
1University of Bordeaux, INSERM, Biologie des maladies cardiovasculaires, U1034, Pessac, France (A.A., M.C., S.R., P.B., V.D., M.P., I.F., M.L.B., M.-A.R., P.D., T.C., C.D.).
Insights
Endothelial dysfunction increases cardiac permeability, leading to diastolic dysfunction and worsening heart inflammation. This highlights the endothelium
Area of Science:
- Cardiovascular Biology
- Endothelial Cell Biology
- Heart Failure Pathophysiology
Background:
- Endothelial dysfunction is implicated in heart failure with preserved ejection fraction (HFpEF).
- The specific role of the endothelium in diastolic abnormalities remains unclear.
- This study investigates endothelial dysfunction's impact on cardiac function independent of comorbidities.
Purpose of the Study:
- To determine the consequences of specific endothelial dysfunction on cardiac function.
- To assess the effect of endothelial dysfunction on cardiomyocyte interactions.
- To investigate the role of endothelial Pdzrn3 in diastolic dysfunction.
Main Methods:
- Developed a genetic mouse model with endothelial cell (EC)-specific overexpression of Pdzrn3 (iEC-Pdzrn3).
- Assessed cardiac function, including diastolic parameters and exercise capacity.
- Utilized electron microscopy and RNA sequencing for cellular and molecular analysis.
Main Results:
- EC-specific Pdzrn3 overexpression increased cardiac vascular permeability (IgG, fibrinogen leakage).
- Induced edema exhibited diastolic dysfunction (elevated end-diastolic pressure, altered dP/dt min, increased natriuretic peptides).
- Observed disrupted EC-cardiomyocyte interactions, fragile vasculature, and altered EC gene expression.
Conclusions:
- Increased endothelial permeability is a key mediator of diastolic dysfunction.
- Endothelial dysfunction exacerbates cardiac inflammation and metabolic changes, particularly with a high-fat diet.
- Targeting endothelial permeability may offer therapeutic strategies for HFpEF.
Background:
While endothelial dysfunction is suggested to contribute to heart failure with preserved ejection fraction pathophysiology, understanding the importance of the endothelium alone, in the pathogenesis of diastolic abnormalities has not yet been fully elucidated. Here, we investigated the consequences of specific endothelial dysfunction on cardiac function, independently of any comorbidity or risk factor (diabetes or obesity) and their potential effect on cardiomyocyte.
Methods:
The ubiquitine ligase Pdzrn3, expressed in endothelial cells (ECs), was shown to destabilize tight junction. A genetic mouse model in which Pdzrn3 is overexpressed in EC (iEC-Pdzrn3) in adults was developed.
Results:
EC-specific Pdzrn3 expression increased cardiac leakage of IgG and fibrinogen blood-born molecules. The induced edema demonstrated features of diastolic dysfunction, with increased end-diastolic pressure, alteration of dP/dt min, increased natriuretic peptides, in addition to limited exercise capacity, without major signs of cardiac fibrosis and inflammation. Electron microscopic images showed edema with disrupted EC-cardiomyocyte interactions. RNA sequencing analysis of gene expression in cardiac EC demonstrated a decrease in genes coding for endothelial extracellular matrix proteins, which could be related to the fragile blood vessel phenotype. Irregularly shaped capillaries with hemorrhages were found in heart sections of iEC-Pdzrn3 mice. We also found that a high-fat diet was not sufficient to provoke diastolic dysfunction; high-fat diet aggravated cardiac inflammation, associated with an altered cardiac metabolic signature in EC-Pdzrn3 mice, reminiscent of heart failure with preserved ejection fraction features.
Conclusions:
An increase of endothelial permeability is responsible for mediating diastolic dysfunction pathophysiology and for aggravating detrimental effects of a high-fat diet on cardiac inflammation and metabolism.
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