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March 7, 2026Cellular and Molecular Life Sciences3 citationsOpen Access

Mitochondrial PDHA1 acetylation orchestrates lactate-dependent epigenetic reprogramming to promote fibrosis via NUAK2

YWYujie WangBinzhou Medical UniversityGDGuanglian DuBinzhou Medical UniversityJZJinjin ZhangBinzhou Medical University

Key Points

  • The research aims to clarify how mitochondrial PDHA1 acetylation contributes to epigenetic changes promoting pulmonary fibrosis.
  • Utilized fibrosis models to investigate the role of PDHA1 and NUAK2 in pulmonary fibrosis.
  • Examined the impact of SIRT3 downregulation on PDHA1 acetylation and metabolic shifts.
  • Conducted genetic and pharmacological interventions to assess NUAK2's role in myofibroblast activation.
  • Identified PDHA1 hyperacetylation resulting in decreased PDH activity and increased lactate levels.
  • Demonstrated that lactate facilitates histone H4 lactylation, enhancing NUAK2 expression.
  • Showed that inhibiting NUAK2 reversed the fibrogenic effects associated with PDHA1 acetylation.

Abstract

Idiopathic pulmonary fibrosis (IPF) is a progressive and fatal lung disease with few effective treatment options. While metabolic reprogramming has been associated with IPF, the precise mechanisms connecting mitochondrial metabolic dysfunction to epigenetically driven fibrogenesis remain unclear. In this study, we identify a pathogenic pathway focused on the mitochondrial enzyme pyruvate dehydrogenase E1 alpha subunit (PDHA1). In fibrosis model, downregulation of the deacetylase sirtuin3 (SIRT3) leads to hyperacetylation of PDHA1 at Lys-83. This modification inhibits pyruvate dehydrogenase (PDH) activity, causing a metabolic shift toward glycolysis and increased lactate production. Lactate, in turn, serves as a precursor for the lactylation of histone H4 at K12 (H4K12la), which activates super-enhancer (SE) at the NUAK2 gene locus, significantly enhancing NUAK2 expression. Both genetic and pharmacological inhibition of NUAK2 confirm its role in driving myofibroblast activation and fibrotic progression. Critically, the pro-fibrotic effects of PDHA1 K83 acetylation (K83ac) were reversed by NUAK2 knockdown. Our findings uncover a novel PDHA1 K83ac-H4K12la-NUAK2 pathway that integrates metabolic and epigenetic signals to promote fibrosis, suggesting that targeting PDHA1 deacetylation and inhibiting NUAK2 could be promising therapeutic strategies.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69abc1b45af8044f7a4eaa5fhttps://doi.org/10.1007/s00018-026-06166-5
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