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Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
HIF-1α and VEGF: Immunohistochemical Profile and Possible Function in Human Aortic Valve Stenosis
Ida Perrotta1, Francesca Maria Moraca, Alfonso Sciangula
1Department of Biology, Ecology and Earth Sciences (Di.B.E.S.T.), University of Calabria , Rende , Italy .
Insights
Calcific aortic stenosis involves inflammation and matrix remodeling. This study reveals hypoxia-induced HIF-1α and VEGF pathways drive new blood vessel growth, potentially fueling calcification in stenotic aortic valves.
Area of Science:
- Cardiovascular Biology
- Vascular Biology
- Biomedical Engineering
Background:
- Calcific aortic stenosis (CAS) is a prevalent valvular disease in Western nations.
- CAS shares histological similarities with atherosclerosis, including lipoprotein accumulation, inflammation, and matrix remodeling.
- Pathological neovascularization is a feature of CAS, but its underlying mechanisms remain poorly understood.
Purpose of the Study:
- To investigate the molecular mechanisms regulating blood vessel growth in stenotic aortic valves.
- To elucidate the roles of Hypoxia-Inducible Factor 1-alpha (HIF-1α) and Vascular Endothelial Growth Factor (VEGF) in CAS pathogenesis.
Main Methods:
- Analysis of 19 native degenerating aortic valves from replacement surgeries.
- Utilized Western blot, immunohistochemistry, morphometry, and ultrastructural analysis.
- Examined extracellular matrix remodeling, leaflet thickening, and neovascularization.
Main Results:
- Demonstrated adverse extracellular matrix remodeling and significant leaflet thickening in stenotic valves.
- Confirmed significant upregulation and local production of HIF-1α and VEGF, co-localizing with angiogenesis and calcification.
- Characterized neovasculature morphology, showing intact blood vessels near mineralized areas.
Conclusions:
- Structural matrix remodeling in CAS may lead to hypoxia, stabilizing HIF-1α.
- Stabilized HIF-1α upregulates VEGF, promoting angiogenesis to address hypoxia and support calcification.
- These findings highlight a novel pathway linking hypoxia, angiogenesis, and calcification in CAS.
Abstract:
Calcific aortic stenosis (CAS) is the most common valvular disease in Western countries. Histological findings in patients with CAS extremely resemble those of atherosclerosis and include accumulation and modification of lipoproteins, inflammation, extracellular matrix remodeling, and calcification. Angiogenesis is another prominent feature of CAS; however, there is only a limited amount of data available regarding the mechanisms behind the pathological neovascularization of a structure that is originally avascular. The present study aims to identify the molecular basis that regulates blood vessel growth in stenotic aortic valves, focusing on the role of HIF-1α and VEGF pathway. A total of 19 native degenerating aortic valves obtained at valve replacement surgery have been processed for Western blot, immunohistochemical, morphometric, and ultrastructural analyses. First, we have demonstrated the adverse ECM remodeling and the significant thickening of the leaflet also showing that HIF-1α and VEGF are significantly upregulated in the stenotic valves, are locally produced and colocalize with angiogenesis and areas of calcification. Next, we have characterized, for the first time to the best of our knowledge, the morphological features of the neovasculature evidencing the presence of intact blood vessels in close proximity to the mineralized zones. These results suggest that the complex structural remodeling of the matrix might reduce oxygen availability in the valve cusp contributing to the stabilization of HIF-1α that in turn induces a metabolic adaptation through the upregulation of VEGF and the formation of new blood vessels not only to overcome the hypoxic state but also to sustain the calcification process.
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