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Updated: Dec 27, 2025

Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
Circulating and tissue matricellular RNA and protein expression in calcific aortic valve disease
Alexander P Kossar1, Wanda Anselmo2, Juan B Grau3
1Columbia University, New York, New York.
Insights
Aortic valve sclerosis, an early stage of calcific aortic valve disease, shows distinct molecular differences from severe aortic stenosis. Extracellular matrix regulators may serve as biomarkers for early disease detection and intervention.
Area of Science:
- Cardiovascular Medicine
- Molecular Biology
- Biomarker Discovery
Background:
- Aortic valve sclerosis is a common, asymptomatic precursor to calcific aortic valve disease.
- Understanding its molecular underpinnings is crucial for early therapeutic intervention.
- Current characterization of aortic valve sclerosis remains limited.
Purpose of the Study:
- To investigate the molecular differences between aortic valve sclerosis and severe aortic stenosis.
- To identify potential circulating biomarkers for early detection of calcific aortic valve disease.
- To explore novel therapeutic targets for disease mitigation.
Main Methods:
- Multiplex assays and RNA sequencing were performed on human aortic valve tissue and blood samples from patients with varying degrees of valvular disease.
- Gene expression profiles were analyzed to identify differentially expressed genes and key molecular pathways.
- Bioinformatic analyses were used to identify extracellular matrix regulators and circulating biomarkers.
Main Results:
- RNA sequencing identified 182 differentially expressed genes between aortic valve sclerosis and aortic stenosis.
- Six key extracellular matrix regulators (TBHS2, SPARC, COL1A2, COL1A1, SPP1, CTGF) were identified.
- Differential expression of circulating biomarkers (osteopontin, osteoprotegerin, MMP-2) corresponded to valvular mRNA expression.
Conclusions:
- Distinct mRNA and protein expression patterns differentiate aortic valve sclerosis from aortic stenosis.
- Extracellular matrix regulators show potential as circulating biomarkers for early calcific aortic valve disease.
- These findings suggest novel targets for early disease mitigation strategies.
Abstract:
Aortic valve sclerosis is a highly prevalent, poorly characterized asymptomatic manifestation of calcific aortic valve disease and may represent a therapeutic target for disease mitigation. Human aortic valve cusps and blood were obtained from 333 patients undergoing cardiac surgery (n = 236 for severe aortic stenosis, n = 35 for asymptomatic aortic valve sclerosis, n = 62 for no valvular disease), and a multiplex assay was used to evaluate protein expression across the spectrum of calcific aortic valve disease. A subset of six valvular tissue samples (n = 3 for asymptomatic aortic valve sclerosis, n = 3 for severe aortic stenosis) was used to create RNA sequencing profiles, which were subsequently organized into clinically relevant gene modules. RNA sequencing identified 182 protein-encoding, differentially expressed genes in aortic valve sclerosis vs. aortic stenosis; 85% and 89% of expressed genes overlapped in aortic stenosis and aortic valve sclerosis, respectively, which decreased to 55% and 84% when we targeted highly expressed genes. Bioinformatic analyses identified six differentially expressed genes encoding key extracellular matrix regulators: TBHS2, SPARC, COL1A2, COL1A1, SPP1, and CTGF. Differential expression of key circulating biomarkers of extracellular matrix reorganization was observed in control vs. aortic valve sclerosis (osteopontin), control vs. aortic stenosis (osteoprotegerin), and aortic valve sclerosis vs. aortic stenosis groups (MMP-2), which corresponded to valvular mRNA expression. We demonstrate distinct mRNA and protein expression underlying aortic valve sclerosis and aortic stenosis. We anticipate that extracellular matrix regulators can serve as circulating biomarkers of early calcific aortic valve disease and as novel targets for early disease mitigation, pending prospective clinical investigations.
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