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1.
Biochem J ; 441(2): 731-41, 2012 Jan 15.
Artigo em Inglês | MEDLINE | ID: mdl-21995425

RESUMO

In the present study we provide evidence that SRP-35, a protein we identified in rabbit skeletal muscle sarcoplasmic reticulum, is an all-trans-retinol dehydrogenase. Analysis of the primary structure and tryptic digestion revealed that its N-terminus encompasses a short hydrophobic sequence bound to the sarcoplasmic reticulum membrane, whereas its C-terminal catalytic domain faces the myoplasm. SRP-35 is also expressed in liver and adipocytes, where it appears in the post-microsomal supernatant; however, in skeletal muscle, SRP-35 is enriched in the longitudinal sarcoplasmic reticulum. Sequence comparison predicts that SRP-35 is a short-chain dehydrogenase/reductase belonging to the DHRS7C [dehydrogenase/reductase (short-chain dehydrogenase/reductase family) member 7C] subfamily. Retinol is the substrate of SRP-35, since its transient overexpression leads to an increased production of all-trans-retinaldehyde. Transfection of C2C12 myotubes with a fusion protein encoding SRP-35-EYFP (enhanced yellow fluorescent protein) causes a decrease of the maximal Ca²âº released via RyR (ryanodine receptor) activation induced by KCl or 4-chloro-m-chresol. The latter result could be mimicked by the addition of retinoic acid to the C2C12 cell tissue culture medium, a treatment which caused a significant reduction of RyR1 expression. We propose that in skeletal muscle SRP-35 is involved in the generation of all-trans-retinaldehyde and may play an important role in the generation of intracellular signals linking Ca2+ release (i.e. muscle activity) to metabolism.


Assuntos
Oxirredutases do Álcool/metabolismo , Proteínas Musculares/metabolismo , Sequência de Aminoácidos , Animais , Cálcio/metabolismo , Linhagem Celular , Células HEK293 , Humanos , Dados de Sequência Molecular , Contração Muscular , Fibras Musculares Esqueléticas/metabolismo , Proteínas Musculares/química , Proteínas Musculares/isolamento & purificação , Músculo Esquelético/metabolismo , NAD/metabolismo , Coelhos , Canal de Liberação de Cálcio do Receptor de Rianodina/metabolismo , Retículo Sarcoplasmático/metabolismo , Distribuição Tecidual
2.
Am J Physiol Cell Physiol ; 302(1): C88-99, 2012 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-21918181

RESUMO

Regular endurance exercise remodels skeletal muscle, largely through the peroxisome proliferator-activated receptor-γ coactivator-1α (PGC-1α). PGC-1α promotes fiber type switching and resistance to fatigue. Intracellular calcium levels might play a role in both adaptive phenomena, yet a role for PGC-1α in the adaptation of calcium handling in skeletal muscle remains unknown. Using mice with transgenic overexpression of PGC-1α, we now investigated the effect of PGC-1α on calcium handling in skeletal muscle. We demonstrate that PGC-1α induces a quantitative reduction in calcium release from the sarcoplasmic reticulum by diminishing the expression of calcium-releasing molecules. Concomitantly, maximal muscle force is reduced in vivo and ex vivo. In addition, PGC-1α overexpression delays calcium clearance from the myoplasm by interfering with multiple mechanisms involved in calcium removal, leading to higher myoplasmic calcium levels following contraction. During prolonged muscle activity, the delayed calcium clearance might facilitate force production in mice overexpressing PGC-1α. Our results reveal a novel role of PGC-1α in altering the contractile properties of skeletal muscle by modulating calcium handling. Importantly, our findings indicate PGC-1α to be both down- as well as upstream of calcium signaling in this tissue. Overall, our findings suggest that in the adaptation to chronic exercise, PGC-1α reduces maximal force, increases resistance to fatigue, and drives fiber type switching partly through remodeling of calcium transients, in addition to promoting slow-type myofibrillar protein expression and adequate energy supply.


Assuntos
Cálcio/metabolismo , Contração Muscular/fisiologia , Fadiga Muscular/fisiologia , Fibras Musculares Esqueléticas/fisiologia , Transativadores/fisiologia , Animais , Cálcio/fisiologia , Camundongos , Camundongos Transgênicos , Fibras Musculares de Contração Rápida/fisiologia , Fibras Musculares Esqueléticas/metabolismo , Fibras Musculares de Contração Lenta/fisiologia , Coativador 1-alfa do Receptor gama Ativado por Proliferador de Peroxissomo , Distribuição Aleatória , Fatores de Transcrição
3.
J Physiol ; 587(Pt 13): 3071-9, 2009 Jul 01.
Artigo em Inglês | MEDLINE | ID: mdl-19403606

RESUMO

In striated muscle, activation of contraction is initiated by membrane depolarisation caused by an action potential, which triggers the release of Ca(2+) stored in the sarcoplasmic reticulum by a process called excitation-contraction coupling. Excitation-contraction coupling occurs via a highly sophisticated supramolecular signalling complex at the junction between the sarcoplasmic reticulum and the transverse tubules. It is generally accepted that the core components of the excitation-contraction coupling machinery are the dihydropyridine receptors, ryanodine receptors and calsequestrin, which serve as voltage sensor, Ca(2+) release channel, and Ca(2+) storage protein, respectively. Nevertheless, a number of additional proteins have been shown to be essential both for the structural formation of the machinery involved in excitation-contraction coupling and for its fine tuning. In this review we discuss the functional role of minor sarcoplasmic reticulum protein components. The definition of their roles in excitation-contraction coupling is important in order to understand how mutations in genes involved in Ca(2+) signalling cause neuromuscular disorders.


Assuntos
Contração Muscular/fisiologia , Músculo Esquelético/fisiologia , Retículo Sarcoplasmático/fisiologia , Animais , Sinalização do Cálcio/genética , Sinalização do Cálcio/fisiologia , Humanos , Modelos Biológicos , Contração Muscular/genética , Proteínas Musculares/genética , Proteínas Musculares/fisiologia
4.
J Cell Biol ; 195(7): 1171-84, 2011 Dec 26.
Artigo em Inglês | MEDLINE | ID: mdl-22184199

RESUMO

Neuregulin (NRG)/ErbB signaling is involved in numerous developmental processes in the nervous system, including synapse formation and function in the central nervous system. Although intensively investigated, its role at the neuromuscular synapse has remained elusive. Here, we demonstrate that loss of neuromuscular NRG/ErbB signaling destabilized anchoring of acetylcholine receptors (AChRs) in the postsynaptic muscle membrane and that this effect was caused by dephosphorylation of α-dystrobrevin1, a component of the postsynaptic scaffold. Specifically, in mice in which NRG signaling to muscle was genetically or pharmacologically abolished, postsynaptic AChRs moved rapidly from the synaptic to the perisynaptic membrane, and the subsynaptic scaffold that anchors the AChRs was impaired. These defects combined compromised synaptic transmission. We further show that blockade of NRG/ErbB signaling abolished tyrosine phosphorylation of α-dystrobrevin1, which reduced the stability of receptors in agrin-induced AChR clusters in cultured myotubes. Our data indicate that NRG/ErbB signaling maintains high efficacy of synaptic transmission by stabilizing the postsynaptic apparatus via phosphorylation of α-dystrobrevin1.


Assuntos
Proteínas Associadas à Distrofina/metabolismo , Receptores ErbB/metabolismo , Neurregulinas/metabolismo , Junção Neuromuscular/metabolismo , Receptor ErbB-2/metabolismo , Agrina/metabolismo , Animais , Células Cultivadas , Receptores ErbB/deficiência , Camundongos , Camundongos Knockout , Fibras Musculares Esqueléticas/metabolismo , Neurregulinas/deficiência , Junção Neuromuscular/patologia , Fosforilação , Receptor ErbB-2/deficiência , Receptor ErbB-4 , Receptores Colinérgicos/metabolismo , Transdução de Sinais , Membranas Sinápticas/metabolismo
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