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Published on: February 4, 2021
Role of endothelial CXCR4 in the development of aortic valve stenosis
Anna Winnicki1, James Gadd1, Vahagn Ohanyan1
1Department of Integrative Medical Sciences, Northeast Ohio Medical University, Rootstown Township, OH, United States.
Insights
Deleting endothelial CXCR4 in mice significantly worsened aortic valve stenosis (AVS) and caused cardiac hypertrophy. This suggests endothelial CXCR4 is crucial for maintaining aortic valve health and preventing AVS development.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Vascular Biology
Background:
- CXCL12/CXCR4 signaling is vital for heart development and repair.
- The specific role of endothelial CXCR4 in aortic valve stenosis (AVS) pathogenesis is not well understood.
Purpose of the Study:
- To investigate the function of endothelial CXCR4 in the development of AVS.
- To determine if endothelial cell-specific deletion of CXCR4 influences AVS progression.
Main Methods:
- Generated endothelial cell-specific CXCR4 knockout (EC CXCR4 KO) mice.
- Assessed cardiac function and aortic valve parameters using echocardiography.
- Quantified calcification, fibrosis, and cardiac hypertrophy in heart samples.
Main Results:
- EC CXCR4 KO mice exhibited increased aortic valve velocity and pressure gradient, with reduced valve area and ejection fraction.
- Significant cardiac hypertrophy, including increased left ventricle posterior wall thickness and heart weight to body weight ratio, was observed.
- Increased microcalcifications, interstitial fibrosis, and thickened aortic valve leaflets were confirmed in EC CXCR4 KO mice.
Conclusions:
- Endothelial cell CXCR4 deletion is associated with the development of AVS and left ventricular hypertrophy.
- Endothelial CXCR4 plays a critical role in maintaining normal aortic valve development and function.
- EC CXCR4 KO mice represent a promising new model for studying AVS.
Background:
CXCL12/CXCR4 signaling is essential in cardiac development and repair, however, its contribution to aortic valve stenosis (AVS) remains unclear. In this study, we tested the role of endothelial CXCR4 on the development of AVS.
Materials And Methods:
We generated CXCR4 endothelial cell-specific knockout mice (EC CXCR4 KO) by crossing CXCR4fl/fl mice with Tie2-Cre mice to study the role of endothelial cell CXCR4 in AVS. CXCR4fl/fl mice were used as controls. Echocardiography was used to assess the aortic valve and cardiac function. Heart samples containing the aortic valve were stained using Alizarin Red for detection of calcification. Masson's trichrome staining was used for the detection of fibrosis. The apex of the heart samples was stained with wheat germ agglutinin (WGA) to visualize ventricular hypertrophy.
Results:
Compared with the control group, the deletion of CXCR4 in endothelial cells led to significantly increased aortic valve peak velocity and aortic valve peak pressure gradient, with decreased aortic valve area and ejection fraction. EC CXCR4 KO mice also developed cardiac hypertrophy as evidenced by increased diastolic and systolic left ventricle posterior wall thickness (LVPW), cardiac myocyte size, and heart weight (HW) to body weight (BW) ratio. Our data also confirmed increased microcalcifications, interstitial fibrosis, and thickened valvular leaflets of the EC CXCR4 KO mice.
Conclusion:
The data collected throughout this study suggest the deletion of CXCR4 in endothelial cells is linked to the development of aortic valve stenosis and left ventricular hypertrophy. The statistically significant parameters measured indicate that endothelial cell CXCR4 plays an important role in aortic valve development and function. We have compiled compelling evidence that EC CXCR4 KO mice can be used as a novel model for AVS.
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