Regulatory mechanisms of skeletal muscle protein turnover during exercise.
about
Homodimerization of RBPMS2 through a new RRM-interaction motif is necessary to control smooth muscle plasticityA Ca(2+)-calmodulin-eEF2K-eEF2 signalling cascade, but not AMPK, contributes to the suppression of skeletal muscle protein synthesis during contractionsPower training and postmenopausal hormone therapy affect transcriptional control of specific co-regulated gene clusters in skeletal muscle.Loss of function of myosin chaperones triggers Hsf1-mediated transcriptional response in skeletal muscle cells.Role of Ingested Amino Acids and Protein in the Promotion of Resistance Exercise-Induced Muscle Protein Anabolism.Similar Responses of Circulating MicroRNAs to Acute High-Intensity Interval Exercise and Vigorous-Intensity Continuous Exercise.Protein turnover, amino acid requirements and recommendations for athletes and active populations.Investigating the Cellular and Metabolic Responses of World-Class Canoeists Training: A Sportomics Approach.An overview of the therapeutic effects of leucine supplementation on skeletal muscle under atrophic conditions.Recent progress toward understanding the molecular mechanisms that regulate skeletal muscle mass.Characterization and regulation of mechanical loading-induced compensatory muscle hypertrophy.Molecular mechanisms of muscle plasticity with exercise.The role of mTORC1 in regulating protein synthesis and skeletal muscle mass in response to various mechanical stimuli.Beyond muscle hypertrophy: why dietary protein is important for endurance athletes.Implications of exercise training and distribution of protein intake on molecular processes regulating skeletal muscle plasticity.Fuel for the work required: a practical approach to amalgamating train-low paradigms for endurance athletes.Long-term Leucine Supplementation Improves Metabolic But Not Molecular Responses in the Skeletal Muscle of Trained Rats Submitted to Exhaustive Exercise.Training in the fasted state facilitates re-activation of eEF2 activity during recovery from endurance exercise.Exercise type and volume alter signaling pathways regulating skeletal muscle glucose uptake and protein synthesis.Protein and the Adaptive Response With Endurance Training: Wishful Thinking or a Competitive Edge?The balancing act between the cellular processes of protein synthesis and breakdown: exercise as a model to understand the molecular mechanisms regulating muscle mass
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Regulatory mechanisms of skeletal muscle protein turnover during exercise.
description
article científic
@ca
article scientifique
@fr
articolo scientifico
@it
artigo científico
@pt
bilimsel makale
@tr
scientific article published on 12 December 2008
@en
vedecký článok
@sk
vetenskaplig artikel
@sv
videnskabelig artikel
@da
vědecký článek
@cs
name
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@en
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@nl
type
label
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@en
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@nl
prefLabel
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@en
Regulatory mechanisms of skeletal muscle protein turnover during exercise.
@nl
P2860
P1476
Regulatory mechanisms of skeletal muscle protein turnover during exercise
@en
P2093
Adam J Rose
P2860
P304
P356
10.1152/JAPPLPHYSIOL.91375.2008
P407
P577
2008-12-12T00:00:00Z