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.

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