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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.
Abstract:
The wobbler mouse represents a model for neurodegenerative disease affecting motor neurons. This study explored the importance of fiber type specific changes for the contractile dysfunction of soleus and extensor digitorum longus (EDL) muscles from wobbler mice using a specific inhibitor of force generation by the type II myosin protein. Generally, wobbler condition was associated with ~50% reductions in muscle mass and contractile capacity in both muscles. In soleus, an increase in the relative abundance of type I myosin protein was observed. Since, however, only ~40% of the fibers containing type I myosin had functional innervation whereas almost all fibers containing type II myosin were innervated, the shift toward type I myosin was without significance for the in vivo contractile phenotype. Soleus muscles from wobbler mice were further characterized by a 2-fold increase in the width of the twitches, which was associated with a reduction in the excitation frequency necessary to elicit tetanic contractions. Since the SR Ca(2+) ATPase in wobbler soleus was reduced from 22 ± 5 to 10 ± 2 nmol/g muscle tissue (P=0.0006), the increase in twitch width was most likely caused by delayed recovery of cytosolic Ca(2+). Such changes were not observed in EDL. It is concluded that the shift in myosin protein from type II to type I previously reported in both innervated and denervated wobbler muscles primarily takes place in the population of denervated muscle fibers. Since these muscles do not contribute to force generation, the transition is, therefore, of limited relevance for the contractile phenotype of the muscles. Instead, the slow contractile phenotype of wobbler soleus muscles seemed to be a consequence of reduced SR content of Ca(2+) ATPase.
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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