Repetitive TLR3 activation in the lung induces skeletal muscle adaptations and cachexia

Ted G Graber1, Brandy L Rawls2, Bing Tian3

  • 1Division of Rehabilitation Science, University of Texas Medical Branch, 301 University BLVD, Galveston, TX 77555, United States; Department of Nutrition and Metabolism, University of Texas Medical Branch, 301 University BLVD, Galveston, TX 77555, United States.

Experimental Gerontology
|February 17, 2018
PubMed

Insights

Repeated viral infections, mimicked by poly(I:C), cause muscle atrophy and weakness in mice. This study introduces a new model for cachexia and sarcopenia research in older adults susceptible to lung infections.

Area of Science:

  • Immunology
  • Gerontology
  • Muscle Physiology

Background:

  • Older adults are vulnerable to severe lung infections due to immunosenescence.
  • Repeated respiratory viral infections can accelerate pulmonary dysfunction.
  • Toll-like receptor 3 (TLR3) mediates innate immune responses to viral infections via double-stranded RNA detection.

Purpose of the Study:

  • To investigate if repetitive poly(I:C) administration, mimicking viral infections, induces muscle atrophy, weakness, and functional loss in a mouse model.
  • To establish a novel model for studying muscle wasting (cachexia/sarcopenia) linked to respiratory infections.

Main Methods:

  • Utilized a mouse model with repetitive intranasal poly(I:C) administration to simulate viral exacerbation.
  • Assessed skeletal muscle morphology (fiber size, mass) and in vivo physical function (strength, motor function, endurance).
  • Evaluated in vitro muscle contractile properties and oxidative capacity (succinate dehydrogenase activity).

Main Results:

  • Poly(I:C)-treated mice showed significant reductions in muscle fiber cross-sectional area, muscle mass, and body mass compared to controls.
  • Contractile dysfunction and decreased physical function (grip strength, endurance) were observed in treated mice.
  • Altered oxidative capacity was noted, with increased succinate dehydrogenase in the diaphragm but decreased in the gastrocnemius.

Conclusions:

  • Repetitive poly(I:C) treatment leads to significant muscle morphological and functional deficits in mice.
  • The findings support a new model for cachexia and sarcopenia, relevant to understanding muscle wasting after respiratory infections.
  • This model offers potential for future research into the mechanisms of age-related muscle loss and infection susceptibility.

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