Creatine ingestion augments dietary carbohydrate mediated muscle glycogen supercompensation during the initial 24 h of recovery following prolonged exhaustive exercise in humans
Roberts PA, Fox J, Peirce N, Jones SW, Casey A, Greenhaff PL
Amino acids · 37 citations
How it was studied
- Design
- Controlled clinical trial (indexed by PubMed)
- Studied in
- People
- Main outcome
- Health markers and function
Who paid for it
- Funding
- Independent funding
- Government
- Medical Research Council
- Government
- Chemical Biological Defence and Human Sciences Domain of the UK MoD Corporate Research Programme
- Grants
- Medical Research Council (MR/K00414X/1)
Based on 2 listed funder(s) and full-text disclosure statement.
Publication
- Published
- 2016-05-19 · Amino Acids · vol. 48 · issue 8 · pp. 1831–1842
- Publisher
- Springer Science+Business Media
- Cited
- 58 citations · more than 89% of similar papers · 2.8× the field average
- References
- 62 works
- Access
- Open access (hybrid journal) · CC-BY
- Research areas
- Muscle metabolism and nutrition · Exercise and Physiological Responses · Sports Performance and Training
- Keywords
- Glycogen, Creatine, Internal medicine, Phosphocreatine, Endocrinology, Placebo, Ingestion, Medicine, Carbohydrate, GLUT4, Exercise physiology, Physical exercise, Insulin, Glucose transporter
- MeSH
- muscle, skeletal, humans, creatine, glycogen, dietary carbohydrates, muscle proteins, glucose tolerance test, gene expression regulation, physical endurance, adult, male
6 authors
From GB
- Paul A. RobertsUniversity of Nottingham; Queen's Medical Centre
- John FoxUniversity of Nottingham; Queen's Medical Centre
- Nicholas S. PeirceUniversity of Nottingham; Queen's Medical Centre
- Simon Wyn JonesUniversity of Nottingham; Queen's Medical Centre
- A. E. CaseyQinetiq (United Kingdom)
- Paul Leonard Greenhaff · correspondingUniversity of Nottingham; Queen's Medical Centre
Abstract
Muscle glycogen availability can limit endurance exercise performance. We previously demonstrated 5 days of creatine (Cr) and carbohydrate (CHO) ingestion augmented post-exercise muscle glycogen storage compared to CHO feeding alone in healthy volunteers. Here, we aimed to characterise the time-course of this Cr-induced response under more stringent and controlled experimental conditions and identify potential mechanisms underpinning this phenomenon. Fourteen healthy, male volunteers cycled to exhaustion at 70 % VO2peak. Muscle biopsies were obtained at rest immediately post-exercise and after 1, 3 and 6 days of recovery, during which Cr or placebo supplements (20 g day(-1)) were ingested along with a prescribed high CHO diet (37.5 kcal kg body mass(-1) day(-1), >80 % calories CHO). Oral-glucose tolerance tests (oral-GTT) were performed pre-exercise and after 1, 3 and 6 days of Cr and placebo supplementation. Exercise depleted muscle glycogen content to the same extent in both treatment groups. Creatine supplementation increased muscle total-Cr, free-Cr and phosphocreatine (PCr) content above placebo following 1, 3 and 6 days of supplementation (all P < 0.05). Creatine supplementation also increased muscle glycogen content noticeably above placebo after 1 day of supplementation (P < 0.05), which was sustained thereafter. This study confirmed dietary Cr augments post-exercise muscle glycogen super-compensation, and demonstrates this occurred during the initial 24 h of post-exercise recovery (when muscle total-Cr had increased by <10 %). This marked response ensued without apparent treatment differences in muscle insulin sensitivity (oral-GTT, muscle GLUT4 mRNA), osmotic stress (muscle c-fos and HSP72 mRNA) or muscle cell volume (muscle water content) responses, such that another mechanism must be causative.
Abstract via Europe PMC. Copyright remains with the authors or publisher (CC BY).
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