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January 25, 20262 citations

Mitochondrial retrograde signal through GCN5L1 transition-mediated PPARγ stabilization promotes MASLD development.

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JZJiaqi ZhangDWD. WangQTQiqi Tang

Key Points

  • The research focuses on understanding how GCN5L1 contributes to PPARγ stabilization during lipid overload.
  • Identified GCN5L1 translocation from mitochondria to cytoplasm during lipid overload and high-fat diet.
  • Conducted transcriptome and proteome analyses to explore GCN5L1 interactions.
  • Evaluated effects of GCN5L1 on PPARγ acetylation and stability in cellular and murine models.
  • GCN5L1 promotes acetylation of PPARγ at lysine 289, enhancing its stability.
  • The translocation of GCN5L1 correlates with increased lipid accumulation in cells and mice.
  • PPARγ-K289 mutation leads to decreased PPARγ stability and worsens liver steatosis.

Abstract

Mitochondrial retrograde signaling plays crucial roles in maintaining metabolic homeostasis via regulating genome modification and oxidative responsive gene expression. In this study, we identified GCN5L1, a protein localized in both mitochondria and cytoplasm, and demonstrated its specific translocation from mitochondria to cytoplasm during lipid overload and high-fat diet feeding. Using transcriptome and proteome analyses, we identified that cytoplasmic GCN5L1 binds to and promotes the acetylation of PPARγ at lysine 289 (K289). This acetylation protected PPARγ from ubiquitination-mediated degradation by proteasome. GCN5L1 translocation enhanced protein stability of PPARγ and subsequently promoted lipid accumulation in both cultured cells and murine models. Our study further reveals that PPARγ-K289 mutation reduces the ubiquitination of PPARγ and exacerbates liver steatosis in mice. These findings unveil a mitochondrial retrograde signaling during lipid overload, which regulates the crucial lipogenic transcriptional factor. This discovery elucidates an unrecognized mitochondrial function and mechanism underlying hepatic lipid synthesis.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/6975b1eafeba4585c2d6d72bhttps://doi.org/10.1172/jci.insight.196695
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1GCN5 drives MASLD progression through LXRα/SREBP1c signaling pathway–mediated de novo lipogenesis2026
  2. 2GCN5L: a critical target in energy metabolism pathways2025
  3. 3Acetylation of the Mitochondrial Chaperone GRP75 Governs ER‐Mitochondrial Calcium Homeostasis and Hepatocyte Insulin Resistance2025
  4. 4GCN5 drives NAFLD progression through LXRα/SREBP1c signaling pathway-mediated de novo lipogenesis2025
  5. 5Glucagon-induced PGC-1α4/PPARγ promotes hepatic lipid storage and macrosteatosis in fasting and MASLD2025