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Updated: Jan 17, 2026

Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
Reversion of aortic valve cells calcification by activation of Notch signalling via histone acetylation induction
Gloria Garoffolo1, Silvia Ferrari1, Sara De Martino2
1Centro Cardiologico Monzino, IRCCS, Milan, Italy.
Insights
A new study links aortic valve calcification to cellular senescence and epigenetic changes. A novel treatment, SPV106, reversed these effects in cells and reduced calcification in animal models, offering hope for valve stenosis treatment.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Cellular Senescence
Background:
- Aortic valve calcification is common in aging populations but poorly understood.
- Current treatments for valve calcification are limited, highlighting a significant unmet medical need.
- The study investigates the role of cellular senescence and epigenetic alterations in aortic valve calcification.
Purpose of the Study:
- To examine the association between cellular senescence, epigenetic modifications, and calcification in human valve interstitial cells (VICs).
- To evaluate the therapeutic potential of SPV106, a histone acetyltransferase activator, in reversing senescent and calcific VIC phenotypes.
- To assess the efficacy of SPV106 in preventing and treating aortic valve calcification in both ex vivo and in vivo models.
Main Methods:
- Examined epigenetic marks (DNA methylation, histone acetylation/methylation), senescence, and calcification in human VICs from patients with aortic valve insufficiency and stenosis.
- Utilized a mouse model of vascular/valve calcification induced by Vitamin D administration.
- Treated human VICs and mouse models with Pentadecylidenemalonate-1b (SPV106) to activate KAT2B/pCAF histone acetyltransferase.
Main Results:
- Human VICs undergoing calcification exhibited a senescent phenotype with increased DNA methylation and altered histone epigenetic marks.
- SPV106 treatment restored histone acetylation, modified chromatin accessibility, and upregulated Notch1 expression in human VICs.
- SPV106 prevented calcific lesion accumulation ex vivo and reduced valve calcification, preserved valve motion, and improved cardiac function in vivo.
Conclusions:
- Cellular senescence and epigenetic alterations are linked to aortic valve calcification.
- SPV106, by activating histone acetyltransferases, can reverse the senescent/calcific VIC phenotype.
- Histone acetyltransferase activators represent a promising therapeutic strategy to prevent and treat aortic valve stenosis.
Abstract:
Calcification of the aortic valve is a prevalent cardiovascular pathology in the aging population. Traditionally linked to inflammation, lipid accumulation, and risk conditions, this disease remains poorly understood, and effective treatments to halt its progression are not yet available. We hypothesized that calcification of the human valve interstitial cells (VICs) is associated with cellular senescence and alterations in the epigenetic setup, like in arteries. To verify this hypothesis, we examined the epigenetic marks (DNA methylation; Histones H3/H4 acetylation/methylation), the senescence and the calcification process in human VICs obtained from two distinct pathologic settings of the aortic valve (valve insufficiency and valve stenosis), and employed a mouse model of vascular/valve calcification, based on the administration of Vitamin D. Our findings revealed a link between the senescent phenotype of human VICs and calcification, characterized by increased DNA methylation and changes in histone epigenetic marks. To reverse the senescent/calcific VICs phenotype, we used Pentadecylidenemalonate-1b (SPV106), which activates KAT2B/pCAF histone acetyltransferase. In human VICs, SPV106 restored Histone acetylation marks, modified general chromatin accessibility and upregulated expression of Notch1, a potent inhibitor of valve calcification. The treatment also prevented the accumulation of calcific lesions in an ex vivo model of aortic valve calcification. In vivo treatment with SPV106 reduced calcification of the valve induced by administering Vitamin-D and positively preserved the valve motion compromised by calcification and the overall cardiac function. Based on these results, we propose the treatment with activators of histone acetylates as a viable option to prevent senescence/calcification of aortic VICs via restoration of correct chromatin acetylation, with concrete hopes to retard the progression of valve stenosis, a still largely unmet therapeutic need.
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