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Non-weight bearing-induced muscle weakness: the role of myosin quantity and quality in MHC type II fibers

Authors
Kim, Jong-HeeThompson, LaDora V.
Issue Date
Jul-2014
Publisher
AMER PHYSIOLOGICAL SOC
Keywords
disuse; specific tension; inactivity; exercise; non-weight bearing
Citation
JOURNAL OF APPLIED PHYSIOLOGY, v.307, no.2, pp.190 - 194
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF APPLIED PHYSIOLOGY
Volume
307
Number
2
Start Page
190
End Page
194
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/159507
DOI
10.1152/ajpcell.00076.2014
ISSN
0363-6143
Abstract
We tested the hypothesis that non-weight bearing-induced muscle weakness (i.e., specific force) results from decreases in myosin protein quantity (i.e., myosin content per half-sarcomere and the ratio of myosin to actin) and quality (i.e., force per half-sarcomere and population of myosin heads in the strong-binding state during muscle contraction) in single myosin heavy chain (MHC) type II fibers. Fisher-344 rats were assigned to weight-bearing control (Con) or non-weight bearing (NWB). The NWB rats were hindlimb unloaded for 2 wk. Diameter, force, and MHC content were determined in permeabilized single fibers from the semimembranosus muscle. MHC isoform and the ratio of MHC to actin in each fiber were determined by gel electrophoresis and silver staining techniques. The structural distribution of myosin from spin-labeled fiber bundles during maximal isometric contraction was evaluated using electron paramagnetic resonance spectroscopy. Specific force (peak force per cross-sectional area) in MHC type IIB and IIXB fibers from NWB was significantly reduced by 38% and 18%, respectively. MHC content per half-sarcomere was significantly reduced by 21%. Two weeks of hindlimb unloading resulted in a reduced force per half-sarcomere of 52% and fraction of myosin strong-binding during contraction of 34%. The results suggest that reduced myosin and actin content (quantity) and myosin quality concomitantly contribute to non-weight bearing-related muscle weakness.
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