Neuro-muscular function in the wobbler murine model of primary motor neuronopathy

Martin Broch-Lips1, Thomas Holm Pedersen, Anders Riisager

  • 1Department of Biomedicine, Aarhus University, DK-8000 Aarhus C, Denmark.

Insights

Wobbler mice show reduced muscle mass and function. A shift in myosin type in denervated fibers is not significant, but reduced SR Ca2+ ATPase in soleus muscles causes slower contractions in this neurodegenerative model.

Area of Science:

  • Neuroscience
  • Muscle Physiology
  • Biochemistry

Background:

  • The wobbler mouse is a model for motor neuron disease.
  • Muscle contractile dysfunction is a hallmark of neurodegenerative conditions.
  • Fiber type composition influences muscle function.

Purpose of the Study:

  • Investigate fiber type-specific changes in wobbler mouse soleus and extensor digitorum longus (EDL) muscles.
  • Determine the impact of myosin alterations on contractile dysfunction.
  • Identify the mechanisms underlying contractile deficits in wobbler mice.

Main Methods:

  • Utilized a specific inhibitor of type II myosin for force generation analysis.
  • Assessed muscle mass, contractile capacity, and myosin protein abundance.
  • Measured twitch characteristics and excitation-contraction coupling parameters, including sarcoplasmic reticulum (SR) Ca2+ ATPase content.

Main Results:

  • Wobbler mice exhibited ~50% reduction in muscle mass and contractile capacity in both soleus and EDL muscles.
  • Soleus muscles showed a shift towards type I myosin, but this was largely in denervated fibers and not functionally relevant.
  • Soleus muscles displayed increased twitch width and reduced tetanic contraction frequency, linked to decreased SR Ca2+ ATPase content.

Conclusions:

  • The observed myosin shift in wobbler muscles occurs mainly in denervated fibers, having limited impact on overall contractile phenotype.
  • The slow contractile phenotype in wobbler soleus muscles is primarily attributed to reduced sarcoplasmic reticulum Ca2+ ATPase content.
  • These findings highlight the importance of specific molecular changes in muscle fibers for understanding neurodegenerative muscle pathology.

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