ArticleThe Journal of physiology2022
Fibre type- and localisation-specific muscle glycogen utilisation during repeated high-intensity intermittent exercise.
Article in The Journal of physiology, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 14 papers, 1 of them a synthesis that pooled it.
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14 citing papers in PubMed, 1 synthesis or guideline pooled it, 30 citations in OpenAlex.
- Effects of Low-Carbohydrate and Ketogenic Diets on Anaerobic Performance in Competitive Athletes: A Systematic Review and Meta-Analysis.Nutrients · 2026Pooled it
- Low carbohydrate availability reduces power output at the moderate-to-heavy transition, impairs efficiency, and increases median power frequency during cycling in females.European journal of applied physiology · 2026Trial
- Graded Carbohydrate Ingestion up to 120 g·hScandinavian journal of medicine & science in sports · 2026Article
- Acute effects of moderate intensity exercise on uric acid excretion in underexcretion hyperuricemia.Scientific reports · 2026Article
- Comparative effects of a glucose-fructose bar, glucose-fructose hydrogel and maltodextrin gel on carbohydrate oxidation and sprint performance in Tier 2 athletes.Experimental physiology · 2026Article
- Supplementation with Live and Heat-TreatedNutrients · 2025Article
- Lactic acidosis: implications for human exercise performance.European journal of applied physiology · 2025Review
- Muscle Metabolism and Performance During Simulated Peak-Intensity Periods Occurring Early and Late in a Soccer-Specific Exercise Protocol in Well-Trained Male Players.Scandinavian journal of medicine & science in sports · 2025Article
- Fatiguing high-intensity intermittent exercise depresses maximal NaPflugers Archiv : European journal of physiology · 2025Article
- Exercise- and diet-induced glycogen depletion impairs performance during one-legged constant-load, high-intensity exercise in humans.Frontiers in physiology · 2025Article
- Anti-ALDOA antibody: a novel diagnostic-associated autoantibody in myasthenia gravis.Frontiers in neurology · 2025Article
- Effect of Low vs. High Carbohydrate Intake after Glycogen-Depleting Workout on Subsequent 1500 m Run Performance in High-Level Runners.Nutrients · 2024Article
- Exercise metabolism and adaptation in skeletal muscle.Nature reviews. Molecular cell biology · 2023Review
- Intracellular to Interorgan Mitochondrial Communication in Striated Muscle in Health and Disease.Endocrine reviews · 2023Review
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Authors and funding
10 authors at 4 institutions in 2 countries.
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No grant is acknowledged in the PubMed record.
Abstract
Glycogen particles are situated in key areas of the muscle cell in the vicinity of the main energy-consumption sites and may be utilised heterogeneously dependent on the nature of the metabolic demands. The present study aimed to investigate the time course of fibre type-specific utilisation of muscle glycogen in three distinct subcellular fractions (intermyofibrillar, IMF; intramyofibrillar, Intra; and subsarcolemmal, SS) during repeated high-intensity intermittent exercise. Eighteen moderately to well-trained male participants performed three periods of 10 × 45 s cycling at ∼105% watt max (EX1-EX3) coupled with 5 × 6 s maximal sprints at baseline and after each period. Muscle biopsies were sampled at baseline and after EX1 and EX3. A higher glycogen breakdown rate in type 2 compared to type 1 fibres was found during EX1 for the Intra (-72 vs. -45%) and IMF (-59 vs. -35%) glycogen fractions (P < 0.001) but with no differences for SS glycogen (-52 vs. -40%). In contrast, no fibre type differences were observed during EX2-EX3, where the utilisation of Intra and IMF glycogen in type 2 fibres was reduced, resulting in depletion of all three subcellular fractions to very low levels post-exercise within both fibre types. Importantly, large heterogeneity in single-fibre glycogen utilisation was present with an early depletion of especially Intra glycogen in individual type 2 fibres. In conclusion, there is a clear fibre type- and localisation-specific glycogen utilisation during high-intensity intermittent exercise, which varies with time course of exercise and is characterised by exacerbated pool-specific glycogen depletion at the single-fibre level. KEY POINTS: Muscle glycogen is the major fuel during high-intensity exercise and is stored in distinct subcellular areas of the muscle cell in close vicinity to the main energy consumption sites. In the present study quantitative electron microscopy imaging was used to investigate the utilisation pattern of three distinct subcellular muscle glycogen fractions during repeated high-intensity intermittent exercise. It is shown that the utilisation differs dependent on fibre type, subcellular localisation and time course of exercise and with large single-fibre heterogeneity. These findings expand on our understanding of subcellular muscle glycogen metabolism during exercise and may help us explain how reductions in muscle glycogen can attenuate muscle function even at only moderately lowered whole-muscle glycogen concentrations.
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