Nutritional interventions to augment resistance training-induced skeletal muscle hypertrophy
Пищевые вмешательства для усиления гипертрофии скелетных мышц, вызванной силовыми тренировками
2015-09-03
SCID: 54.1/u5n87cs7
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muscle protein synthesispost-exercise protein intakeprotein ingestionresistance exerciseskeletal muscle hypertrophy
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Abstract (AI)
Skeletal muscle mass is regulated by a balance between muscle protein synthesis (MPS) and muscle protein breakdown (MPB). In healthy humans, MPS is more sensitive (varying 4-5 times more than MPB) to changes in protein feeding and loading rendering it the primary locus determining gains in muscle mass. Performing resistance exercise (RE) followed by the consumption of protein results in an augmentation of MPS and, over time, can lead to muscle hypertrophy. The magnitude of the RE-induced increase in MPS is dictated by a variety of factors including: the dose of protein, source of protein, and possibly the distribution and timing of post-exercise protein ingestion. In addition, RE variables such as frequency of sessions, time under tension, volume, and training status play roles in regulating MPS. This review provides a brief overview of our current understanding of how RE and protein ingestion can influence gains in skeletal muscle mass in young, healthy individuals. It is the goal of this review to provide nutritional recommendations for optimal skeletal muscle adaptation. Specifically, we will focus on how the manipulation of protein intake during the recovery period following RE augments the adaptive response.
Key Findings
1
Consuming protein after resistance exercise augments the exercise-induced increase in muscle protein synthesis and can promote skeletal muscle hypertrophy over time.
2
Muscle protein synthesis is the primary determinant of muscle hypertrophy because it responds 4–5 times more strongly than muscle protein breakdown to protein feeding and resistance exercise.
3
Optimizing protein intake during recovery from resistance exercise is a central nutritional strategy for maximizing skeletal muscle adaptation in young, healthy individuals.
4
Resistance-training variables—including session frequency, time under tension, training volume, and training status—modulate muscle protein synthesis and adaptation.
5
The magnitude of post-exercise muscle protein synthesis depends on protein dose, protein source, and potentially the timing and distribution of protein intake.
Research Object
skeletal muscle hypertrophy induced by resistance training in young, healthy humans
Research Subject
the effects of post-exercise protein intake—including dose, source, distribution, and timing—on muscle protein synthesis and skeletal muscle adaptation
Publication Details
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2015-09-03
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