Dysfunction of Akt/FoxO3a/Atg7 regulatory loop magnifies obesity-regulated muscular mass decline

Yang Yu1, Jing Yang2, Lixia Zheng1

  • 1Institute of Health Sciences, China Medical University, Shenyang 110122, Liaoning, China; College of Basic Medical Science, Key Laboratory of Medical Cell Biology, Ministry of Education, Key Laboratory of Liaoning Province, China Medical University, Shenyang 110122, Liaoning, China.

Molecular Metabolism
|February 8, 2024
PubMed
Abstract

Insights

Obesity increases Atg7 (autophagy gene 7) in muscles, accelerating protein breakdown and muscle loss. Reducing Atg7 can help reverse obesity-related muscle decline by restoring Akt signaling.

Area of Science:

  • Muscle physiology and metabolism
  • Molecular mechanisms of obesity-induced atrophy
  • Autophagy and protein degradation pathways

Background:

  • Obesity accelerates myoprotein degradation, leading to muscle mass loss.
  • Atg7 (autophagy gene 7) is implicated in protein stability and its expression increases in muscle during obesity.
  • The precise role of Atg7 in obesity-induced muscle decline remains unclear.

Purpose of the Study:

  • To elucidate the role and underlying mechanism of Atg7 in obesity-induced muscle mass decline.
  • To investigate the regulatory relationship between Atg7, Akt signaling, and FoxO3a in muscle atrophy.
  • To explore Atg7 as a potential therapeutic target for obesity-related muscle loss.

Main Methods:

  • Established a high-fat diet-induced obesity (DIO) mouse model.
  • Utilized adeno-associated virus-mediated short hairpin RNA (shAtg7) to knock down Atg7 in muscle.
  • Examined Atg7 and myoprotein degradation markers via immunofluorescence and western blotting in tissues and C2C12/HSkMC cells.
  • Assessed transcriptional regulation using luciferase reporter and ChIP assays; investigated Akt's role through knockdown, inhibitor treatment (MK2206), and GST pulldown assays.

Main Results:

  • DIO mice exhibited reduced muscle mass and performance, with increased Atg7 and TRIM63 expression, mirroring obese patients.
  • Palmitic acid treatment in cells increased Atg7, LC3II/I, and p62, promoting FoxO3a-mediated Atg7 transcription.
  • Atg7 knockdown partially reversed DIO-induced muscle loss, mitigated insulin resistance, and restored Akt phosphorylation (p-Akt/Akt ratio), reducing TRIM63.
  • Atg7 directly interacted with Akt, and Atg7-mediated atrophy was reversed by Akt knockdown or inhibition.

Conclusions:

  • High-fat diet and lipid exposure inhibit Akt signaling, promoting FoxO3a-mediated transcription and increasing muscle Atg7 levels.
  • Elevated Atg7 further inhibits Akt phosphorylation, creating a feedback loop with FoxO3a that exacerbates obesity-induced muscle decline.
  • Atg7 acts as a key regulatory point in obesity-induced muscle mass reduction, highlighting its potential as a therapeutic target.

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