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Epigenetic dysregulation of energy homeostasis drives aortic valve stenosis that is treatable with metformin
Timothy J. Cashman, Sherin Saheera, Ashley E. Blau, Edith Mensah Otabil, Nouran Y. Nagy, Thomas D. Samenuk, Timothy P. Fitzgibbons, David D. McManus, Chinmay M. Trivedi
Timothy J. Cashman, Sherin Saheera, Ashley E. Blau, Edith Mensah Otabil, Nouran Y. Nagy, Thomas D. Samenuk, Timothy P. Fitzgibbons, David D. McManus, Chinmay M. Trivedi
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Research Article Cardiology Clinical Research

Epigenetic dysregulation of energy homeostasis drives aortic valve stenosis that is treatable with metformin

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Abstract

Aortic valve stenosis is a progressive and increasingly prevalent disease in older adults, with no approved pharmacologic therapies to prevent or slow its progression. Although genetic risk factors have been identified, the contribution of epigenetic regulation remains poorly understood. Here, we demonstrated that histone deacetylase 3 (HDAC3) maintains aortic valve structure by suppressing mitochondrial biogenesis and preserving extracellular matrix integrity in valvular interstitial fibroblasts. Human stenotic valves displayed elevated acetylation of histone H3 at lysine 27 (H3K27ac) and reduced HDAC3 activity in diseased regions. Mice lacking HDAC3 in aortic valves developed aortic valve stenosis, disrupted collagen organization, increased H3K27ac, and premature mortality. Mechanistically, HDAC3 loss led to activation of nuclear hormone receptor–regulated mitochondrial gene programs, increased oxidative phosphorylation, and reactive oxygen species–induced damage. Treatment with metformin, a mitochondrial complex I inhibitor, restored redox balance, preserved collagen structure, and improved valve function in Hdac3-deficient mice. Supporting these experimental findings, retrospective clinical analysis revealed a significantly lower prevalence and slower progression of aortic valve stenosis in patients treated with metformin. These results uncovered a potentially previously unrecognized role for HDAC3 in coordinating epigenetic and metabolic homeostasis in the aortic valve, suggesting that targeting mitochondrial dysfunction may offer a therapeutic strategy for noncalcific aortic valve disease.

Authors

Timothy J. Cashman, Sherin Saheera, Ashley E. Blau, Edith Mensah Otabil, Nouran Y. Nagy, Thomas D. Samenuk, Timothy P. Fitzgibbons, David D. McManus, Chinmay M. Trivedi

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Figure 4

Hdac3 and phospho-Hdac3 localize to mitochondrial gene promoters to restrict H3K27ac enrichment in energy metabolism pathways.

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Hdac3 and phospho-Hdac3 localize to mitochondrial gene promoters to rest...
(A) Heatmaps display the enrichment of Hdac3 (left) and phospho-Hdac3S424 (right) at transcriptional start sites in murine aortic valves (n = 3). (B) Pie charts illustrate genome-wide occupancy of Hdac3 (top) and phospho-Hdac3S424 (bottom), showing enrichment at promoter regions in murine aortic valves. (C) Top enriched pathways from PANTHER cellular component analysis reveal Hdac3 and phospho-Hdac3S424 enrichment in mitochondrial categories within murine aortic valves. (D) Heatmaps show increased H3K27ac enrichment at transcriptional start sites in Hdac3-deficient murine aortic valves (right) compared with controls (left). (E) Top enriched pathways from Reactome pathway analysis of Hdac3-deficient murine aortic valves show increased H3K27ac enrichment in pathways related to energy production and mitochondrial biogenesis. (F) HOMER motif analysis identifies enrichment of nuclear receptor transcription factors at sites with increased H3K27ac enrichment in Hdac3-deficient murine aortic valves.

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