Inactivation of ATG13 stimulates chronic demyelinating pathologies in muscle-serving nerves and spinal cord

Molly E Drosen1,2, Sarojini Bulbule2, Gunnar Gottschalk2,3

  • 1Milwaukee Institute for Drug Discovery, Department of Chemistry & Biochemistry, University of Wisconsin-Milwaukee, 2000 E Kenwood Blvd, Milwaukee, WI, 53211, USA.

Immunologic Research
|January 8, 2025
PubMed

Insights

Chronic mTOR activation causes muscle fatigue by impairing autophagy and nerve demyelination. This study reveals mTOR

Area of Science:

  • Muscle physiology
  • Cellular biology
  • Neuroscience

Background:

  • Chronic muscle fatigue leads to debilitating weakness and pain.
  • The role of mTOR and autophagy in fatigue is not fully understood.

Purpose of the Study:

  • To investigate the effect of mTOR activation on ATG13 inactivation in chronic muscle fatigue.
  • To elucidate the molecular mechanisms underlying MHY1485-induced muscle fatigue.

Main Methods:

  • Biweekly oral administration of MHY1485 (mTOR inducer) in mice.
  • Assessment of muscle fatigue, autophagy markers, inflammatory cell infiltration, cytokine expression, and nerve myelination.
  • Analysis of STAT3 activation and treadmill exercise performance.

Main Results:

  • MHY1485 administration induced severe muscle weakness and fatigue, mimicking chronic muscle fatigue.
  • Impaired ATG13-dependent autophagy, increased M1 macrophage infiltration, and elevated IL6/RANTES via STAT3 activation were observed.
  • Augmented demyelination in muscle-serving nerve fibers and worsened post-exercise fatigue occurred.
  • ATG13-repressor mice showed similar inflammatory demyelination and fatigue symptoms.

Conclusions:

  • Chronic mTOR activation plays a critical role in post-exertional fatigue (PEM) pathogenesis.
  • mTOR activation impairs autophagy via ATG13 inactivation, leading to inflammation and demyelination.
  • ATG13 impairment is implicated in the development of fatigue and associated neurological deficits.

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