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Updated: May 27, 2026

Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
Inhibitory role of Notch1 in calcific aortic valve disease
Asha Acharya1, Chetan P Hans, Sara N Koenig
1Department of Pediatrics, University of Texas Southwestern Medical Center, Dallas, Texas, United States of America.
Insights
Loss of Notch signaling accelerates aortic valve calcification by downregulating Sox9. Restoring Notch signaling or Sox9 can prevent this process, revealing a key mechanism in valvular heart disease.
Area of Science:
- Cardiovascular Biology
- Molecular Mechanisms of Disease
- Genetics and Signaling Pathways
Background:
- Aortic valve calcification (CAVD) is a prevalent valvular heart disease with unknown mechanisms.
- NOTCH1 mutations link to aortic valve defects and inherited calcification.
- The role of Notch signaling in CAVD pathogenesis is poorly understood.
Purpose of the Study:
- To investigate the molecular mechanisms of CAVD by examining Notch signaling in aortic valves.
- To identify downstream targets of Notch1 involved in aortic valve interstitial cell (AVIC) function.
Main Methods:
- Assessed Notch1 expression in human aortic valves with and without calcification.
- Inhibited Notch signaling in rat AVICs to analyze gene expression changes.
- Utilized an in vitro porcine AVIC calcification model to test Notch signaling modulation.
- Investigated the role of Sox9 as a downstream mediator.
Main Results:
- NOTCH1 expression was decreased in calcified human aortic valves.
- Notch inhibition in rat AVICs led to downregulation of Sox9 and cartilage-specific genes.
- Inhibition of Notch signaling accelerated calcification in porcine AVICs; stimulation attenuated it.
- Sox9 addition prevented calcification induced by Notch inhibition.
Conclusions:
- Loss of Notch signaling promotes aortic valve calcification through a Sox9-dependent pathway.
- Targeting the Notch-Sox9 axis may offer therapeutic strategies for CAVD.
Abstract:
Aortic valve calcification is the most common form of valvular heart disease, but the mechanisms of calcific aortic valve disease (CAVD) are unknown. NOTCH1 mutations are associated with aortic valve malformations and adult-onset calcification in families with inherited disease. The Notch signaling pathway is critical for multiple cell differentiation processes, but its role in the development of CAVD is not well understood. The aim of this study was to investigate the molecular changes that occur with inhibition of Notch signaling in the aortic valve. Notch signaling pathway members are expressed in adult aortic valve cusps, and examination of diseased human aortic valves revealed decreased expression of NOTCH1 in areas of calcium deposition. To identify downstream mediators of Notch1, we examined gene expression changes that occur with chemical inhibition of Notch signaling in rat aortic valve interstitial cells (AVICs). We found significant downregulation of Sox9 along with several cartilage-specific genes that were direct targets of the transcription factor, Sox9. Loss of Sox9 expression has been published to be associated with aortic valve calcification. Utilizing an in vitro porcine aortic valve calcification model system, inhibition of Notch activity resulted in accelerated calcification while stimulation of Notch signaling attenuated the calcific process. Finally, the addition of Sox9 was able to prevent the calcification of porcine AVICs that occurs with Notch inhibition. In conclusion, loss of Notch signaling contributes to aortic valve calcification via a Sox9-dependent mechanism.
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