Related Experiment Video
Updated: Feb 14, 2026

Application of Chronic Stimulation to Study Contractile Activity-induced Rat Skeletal Muscle Phenotypic Adaptations
Published on: January 25, 2018
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.
Abstract:
Due to immunosenescence, older adults are particularly susceptible to lung-based viral infections, with increased severity of symptoms in those with underlying chronic lung disease. Repeated respiratory viral infections produce lung maladaptations, accelerating pulmonary dysfunction. Toll like 3 receptor (TLR3) is a membrane protein that senses exogenous double-stranded RNA to activate the innate immune response to a viral infection. Polyinosinic-polycytidylic acid [poly(I:C)] mimics double stranded RNA and has been shown to activate TLR3. Utilizing an established mouse viral exacerbation model produced by repetitive intranasal poly(I:C) administration, we sought to determine whether repetitive poly(I:C) treatment induced negative muscle adaptations (i.e. atrophy, weakness, and loss of function). We determined skeletal muscle morphological properties (e.g. fiber-type, fiber cross-sectional area, muscle wet mass, etc.) from a treated group ((poly(I:C), n = 9) and a sham-treated control group (PBS, n = 9); age approximately 5 months. In a subset (n = 4 for both groups), we determined in vivo physical function (using grip test for strength, rotarod for overall motor function, and treadmill for endurance) and muscle contractile properties with in vitro physiology (in the EDL, soleus and diaphragm). Our findings demonstrate that poly(I:C)-treated mice exhibit both muscle morphological and functional deficits. Changes of note when comparing poly(I:C)-treated mice to PBS-treated controls include reductions in fiber cross-sectional area (-27% gastrocnemius, -25% soleus, -16% diaphragm), contractile dysfunction (soleus peak tetanic force, -26%), muscle mass (gastrocnemius -19%, soleus -23%), physical function (grip test -34%), body mass (-20%), and altered oxidative capacity (140% increase in succinate dehydrogenase activity in the diaphragm, but 66% lower in the gastrocnemius). Our data is supportive of a new model of cachexia/sarcopenia that has potential for future research into the mechanisms underlying muscle wasting.
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.
Related Concept Videos
Classification of Skeletal Muscle Fibers
Slow-Twitch Muscle Fibers
Slow oxidative, muscle fibers appear red due to large numbers of capillaries and high levels of...
Overview of Skeletal Muscle
Relaxation of Skeletal Muscles
When an action potential reaches the axon terminal, it depolarizes the membrane and opens voltage-gated sodium channels. Sodium ions enter the cell, further depolarizing the presynaptic membrane. This depolarization causes voltage-gated calcium channels to open....
Disorders of the Skeletal Muscle
Musculoskeletal disorders
Musculoskeletal disorders involve injuries and conditions affecting the skeletal muscles and associated connective tissues. These disorders can arise from acute biomechanical stresses or chronic overuse and can occur across different age groups. Common injuries include sprains, fractures, and muscular strains, often resulting from...
Naming Skeletal Muscles
The key factors used in naming muscles include:
Skeletal Muscle Anatomy

