Key result
Hindlimb suspension in rats reduces soleus muscle weight and connectin filament elasticity.
p-value: p=< 0.05
Unloading-induced atrophy in rat soleus muscle reduces the elasticity of connectin filaments, which may contribute to decreased contractile function.
Suggests connectin changes contribute to early contractile impairment in unloaded muscle; hypothesis-generating for disuse atrophy mechanisms, pending human translation.
Responses of the properties of connectin molecules in the slow-twitch soleus (Sol) and fast-twitch extensor digitorum longus muscles of rats to 3 days of unloading with or without 3-day reloading were investigated. The wet weight (relative to body wt) of Sol, not of extensor digitorum longus, in the unloaded group was significantly less than in the age-matched control (P < 0.05). Immunoelectron microscopic analyses showed that a monoclonal antibody against connectin (SM1) bound to the I-band region close to the edge of the A band at resting length and moved reversibly away from the Z line as the muscle fibers were stretched. In Sol, the displacement of the SM1-bound dense spots in response to stretching decreased after hindlimb suspension. There were no changes in the molecular weights and the percent distributions of alpha- and beta-connectin in both muscles after hindlimb suspension. A significant increment of percent beta-connectin in Sol was observed after 3 days of reloading after hindlimb suspension (P < 0.05). It is suggested that the elasticity of connectin filaments in the I-band region of the atrophied Sol fibers was reduced relative to that of the control fibers. The lack of the elasticity in atrophied muscle fibers may cause a decrease in contractile function.
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Goto et al. (2003) studied Muscle atrophy. Unloading (hindlimb suspension) with or without reloading vs. Age-matched control was evaluated on Wet weight of soleus muscle and properties of connectin molecules (p=< 0.05). Hindlimb suspension for 3 days in rats significantly reduced soleus muscle wet weight (P < 0.05) and decreased the elasticity of connectin filaments in the I-band region of atrophied fibers.
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