Key result
Isometric activity partially prevents suspension-induced soleus MHC shifts better than isovelocity activity in rodents.
Isometric contractile activity is more effective than isovelocity activity in preventing suspension-induced shifts in soleus MHC distribution in rodents.
Rodent disuse findings support testing isometric loading in further preclinical work; leaves open translation to human muscle preservation strategies.
This study examined the role of specific types of contractile activity in regulating myosin heavy chain (MHC) isoform expression in rodent soleus. A combination of hindlimb suspension (SN) and two programmed contractile training activity paradigms, either isometric contractile activity (ST-IM) or high-load slowly shortening isovelocity activity, were utilized. Both training paradigms increased muscle mass compared with SN alone. However, only ST-IM resulted in a partial prevention of the suspension-induced decrease in type I MHC. With the use of a fluorescently labeled antibody to type IIa MHC, the distribution of MHCs among fibers was examined immunohistochemically. In SN, the percentage of cells staining positive for type IIa MHC was increased but the staining intensity of the positively staining cells was unchanged compared with control cells. In the ST-IM soleus, the percentage of positively staining fibers was unchanged but the intensity of the positively staining cells was decreased compared with SN values. These results suggest that: 1) isometric contractile activity is more effective than isovelocity activity in preventing suspension-induced shifts in soleus MHC distribution and 2) changes associated with both suspension and training occur in only a small number of fibers, with the majority of fibers apparently unresponsive to these interventions.
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Diffee et al. (1993) studied this question. Isometric contractile activity (ST-IM) or high-load slowly shortening isovelocity activity vs. Hindlimb suspension (SN) alone was evaluated on Myosin heavy chain (MHC) isoform expression and distribution. Isometric contractile activity was more effective than isovelocity activity in partially preventing suspension-induced shifts in soleus myosin heavy chain distribution in rodents.
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