LEUCINE ATTENUATES SKELETAL MUSCLE WASTING VIA INHIBITION OF UBIQUITIN LIGASES
Contribuinte(s) |
UNIVERSIDADE DE SÃO PAULO |
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Data(s) |
18/10/2012
18/10/2012
2010
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Resumo |
The aim of this study was to assess the effect of leucine supplementation on elements of the ubiquitin proteasome system (UPS) in rat skeletal muscle during immobilization. This effect was evaluated by submitting the animals to a leucine supplementation protocol during hindlimb immobilization, after which different parameters were determined, including: muscle mass; cross-sectional area (CSA); gene expression of E3 ligases/deubiquitinating enzymes; content of ubiquitinated proteins; and rate of protein synthesis. Our results show that leucine supplementation attenuates soleus muscle mass loss driven by immobilization. In addition, the marked decrease in the CSA in soleus muscle type I fibers, but not type II fibers, induced by immobilization was minimized by leucine feeding. Interestingly, leucine supplementation severely minimized the early transient increase in E3 ligase [muscle ring finger 1 (MuRF1) and muscle atrophy F-box (MAFbx)/atrogin-1] gene expression observed during immobilization. The reduced peak of E3 ligase gene expression was paralleled by a decreased content of ubiquitinated proteins during leucine feeding. The protein synthesis rate decreased by immobilization and was not affected by leucine supplementation. Our results strongly suggest that leucine supplementation attenuates muscle wasting induced by immobilization via minimizing gene expression of E3 ligases, which consequently could downregulate UPS-driven protein degradation. It is notable that leucine supplementation does not restore decreased protein synthesis driven by immobilization. Muscle Nerve 41: 800-808, 2010 FAPESP[06/61523-7] FAPESP[07/57613-3] |
Identificador |
MUSCLE & NERVE, v.41, n.6, p.800-808, 2010 0148-639X http://producao.usp.br/handle/BDPI/17235 10.1002/mus.21578 |
Idioma(s) |
eng |
Publicador |
JOHN WILEY & SONS INC |
Relação |
Muscle & Nerve |
Direitos |
restrictedAccess Copyright JOHN WILEY & SONS INC |
Palavras-Chave | #atrophy #immobilization #leucine #soleus #ubiquitin-proteasome system #RAT SOLEUS MUSCLE #PROTEIN-DEFICIENT DIET #GENE-EXPRESSION #MESSENGER-RNA #ATROPHY #IMMOBILIZATION #INCREASE #DEGRADATION #PROTEOLYSIS #MECHANISMS #Clinical Neurology #Neurosciences |
Tipo |
article original article publishedVersion |