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Updated: Jun 3, 2025

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Published on: January 7, 2019
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.
Abstract:
Chronic muscle fatigue is a condition characterized by debilitating muscle weakness and pain. Based on our recent finding to study the potential effect of mTOR on ATG13 inactivation in chronic muscle fatigue, we report that biweekly oral administration with MHY1485, a potent inducer of mTOR, develops chronic illness in mice resulting in severe muscle weakness. As a mechanism, we observed that MHY1485 feeding impaired ATG13-dependent autophagy, caused the infiltration of inflammatory M1 macrophages (Mφ), upregulated IL6 and RANTES by STAT3 activation, and augmented demyelination in muscle-serving nerve fibers. Interestingly, these mice displayed worsened muscle fatigue during 2-day post-treadmill exercise, suggesting the critical role of chronic mTOR activation in potential PEM pathogenesis. Interestingly, ATG13-repressor mice exhibited enhanced infiltration of M1Mφ cells, STAT3 activation, demyelination of nerve fibers, and PEM-like symptoms, suggesting the potential role of ATG13 impairment in post-exertional fatigue. HIGHLIGHTS: The potential role of mTOR activation in post-exertional fatigue is highlighted. As a molecular mechanism, mTOR activation augments autophagy impairment via ATG13 inactivation. Autophagy impairment induces IL-6 and RANTES via STAT3, demyelinates nerves in the muscle and spinal cord. ATG13 repressor mice (Tg-ATG13) displayed inflammatory demyelination and post-treadmill fatigue.
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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