Muscle atrophy in patients with Type 2 Diabetes Mellitus: roles of inflammatory pathways, physical activity and exercise

Authors

  • Marissa K. Caldow Victoria Univ, Inst Sport Exercise & Act Living, Clin Exercise Sci Program, Melbourne, Vic, Australia Author
  • Tara C. Brennan-Speranza Univ Melbourne, Dept Physiol, Basic & Clin Myol Lab, Melbourne, Vic, Australia Author
  • George Jerums Univ Sydney, Dept Physiol, Bosch Inst Med Res, Sydney, NSW, Australia Author
  • Melissa Sbaraglia Victoria Univ, Inst Sport Exercise & Act Living, Clin Exercise Sci Program, Melbourne, Vic, Australia Author
  • George Jerums Austin Hlth, Dept Endocrinol, Melbourne, Vic, Australia Author
  • Andrew Garnham Deakin Univ, Sch Exercise & Nutr Sci, Melbourne, Vic, Australia Author
  • Chiew Wong Northern Hosp, Northern Heart, Melbourne, Vic, Australia Author
  • Pazit Levinger Victoria Univ, Inst Sport Exercise & Act Living, Clin Exercise Sci Program, Melbourne, Vic, Australia Author
  • MA ul Haq Emory Univ, Dept Med, Div Renal, Atlanta, GA 30322 USA Author
  • DL Hare Atlanta Vet Affairs Med Ctr, Decatur, GA USA Author
  • SR Price Atlanta Vet Affairs Med Ctr, Decatur, GA USA Author
  • Itamar Levinger Austin Hlth, Dept Cardiol, Melbourne, Vic, Australia Author

DOI:

https://doi.org/10.22029/eir.2016.1711

Keywords:

HUMAN SKELETAL-MUSCLE, TUMOR-NECROSIS-FACTOR, KAPPA-B ACTIVATION, UBIQUITIN-PROTEASOME PATHWAY, INSULIN-RECEPTOR SUBSTRATE-1, FOXO TRANSCRIPTION FACTORS, METABOLIC RISK-FACTORS, CHRONIC KIDNEY-DISEASE, C-REACTIVE PROTEIN, GLUCOSE-UPTAKE

Abstract

Muscle atrophy is caused by an imbalance in contractile protein synthesis and degradation which can be triggered by various conditions including Type 2 Diabetes Mellitus (T2DM). Reduced muscle quality in patients with T2DM adversely affects muscle function, the capacity to perform activities of daily living, quality of life and ultimately may increase the risk of premature mortality. Systemic inflammation initiated by obesity and prolonged overnutrition not only contributes to insulin resistance typical of T2DM, but also promotes muscle atrophy via decreased muscle protein synthesis and increased ubiquitin-proteasome, lysosomal-proteasome and caspase 3-mediated protein degradation. Emerging evidence suggests that the inflammation-sensitive Nuclear Factor. B (NF-kappa B) and Signal Transducer and Activator of Transcription 3 (STAT3) pathways may contribute to muscle atrophy in T2DM. In contrast, exercise appears to be an effective tool in promoting muscle hypertrophy, in part due to its effect on systemic and local (skeletal muscle) inflammation. The current review discusses the role inflammation plays in muscle atrophy in T2DM and the role of exercise training in minimising the effect of inflammatory markers on skeletal muscle. We also report original data from a cohort of obese patients with T2DM compared to age-matched controls and demonstrate that patients with T2DM have 60% higher skeletal muscle expression of the atrophy transcription factor FoxO1. This review concludes that inflammatory pathways in muscle, in particular, NF-kappa B, potentially contribute to T2DM-mediated muscle atrophy. Further in-vivo and longitudinal human research is required to better understand the role of inflammation in T2DM-mediated atrophy and the anti-inflammatory effect of exercise training under these conditions.

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Published

2026-07-15

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