ArticleJournal of translational medicine2026
m6A-Mediated epitranscriptional reprogramming drives cardiac fibrosis by suppressing PGC-1α and boosting mitochondrial fission.
Article in Journal of translational medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.
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14 authors.
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Abstract
backgroundDysregulated mitochondrial fission drives pathological cell states in cardiac fibrosis, but its upstream regulatory mechanisms remain poorly understood. The role of epitranscriptomic regulation, particularly N6-methyladenosine (m6A) modification, in this process has not been defined.
methodsWe employed integrated approaches including in vitro models of TGF-β1-stimulated cardiac fibroblasts, in vivo mouse models of isoproterenol-induced cardiac fibrosis, and analysis of human atrial fibrillation tissues. Techniques encompassed molecular profiling, m6A-specific assays (MeRIP-qPCR, RIP-qPCR), functional studies, high-resolution imaging, and fibroblast-targeted AAV9-mediated gene manipulation.
resultsMETTL3 and YTHDF2 were significantly upregulated in experimental and human fibrotic hearts. METTL3 mediated m6A modification of PGC-1α mRNA, enhancing its recognition and degradation by YTHDF2. This suppression of PGC-1α led to excessive Drp1-dependent mitochondrial fission, which in turn promoted cardiac fibroblast proliferation, migration, and extracellular matrix production. Inhibition of METTL3 or YTHDF2 restored PGC-1α expression, normalized mitochondrial dynamics, and attenuated fibrotic responses in vitro. Fibroblast-specific knockdown of METTL3 or YTHDF2 in vivo robustly ameliorated fibrosis, improved mitochondrial ultrastructure, and restored systolic function. In human atrial fibrillation, activation of this axis correlated with suppressed PGC-1α, enhanced mitochondrial fission, and disease severity.
conclusionOur findings introduce a novel epitranscriptomic pathway involving METTL3 and YTHDF2, which regulates PGC-1α through m6A modification. Targeting this axis presents a promising strategy for therapeutic intervention in cardiac fibrosis, offering new insights into both the molecular mechanisms driving fibrosis and potential treatment avenues.
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