Cold-water immersion after training sessions: effects on fiber type-specific adaptations in muscle K+ transport proteins to sprint-interval training in men
Christiansen D, Bishop DJ, Broatch JR, Bangsbo J, McKenna MJ, Murphy RM
Journal of applied physiology (Bethesda, Md. : 1985) · 16 citations
Review labels
Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.
How it was studied
- Design
- Randomized controlled trial (classified by our AI screen)
- Studied in
- People
- Main outcome
- Mechanisms only
Who paid for it
- Funding
- Possibly industry funded
- University or hospital
- Victoria University
- Government
- Directorate for Biological Sciences
- Government
- National Institute of Child Health and Human Development
- University or hospital
- Victoria University (VU)
- Industry group
- Exercise and Sport Science Australia
Based on 5 listed funder(s).
Publication
- Published
- 2018-05-10 · J Appl Physiol (1985) · vol. 125 · issue 2 · pp. 429–444
- Publisher
- American Physiological Society
- Cited
- 20 citations · more than 89% of similar papers · 2.8× the field average
- References
- 74 works
- Access
- Free to read
- Research areas
- Sports Performance and Training · Muscle metabolism and nutrition · Cardiovascular and exercise physiology
- Keywords
- Sprint, Interval training, Training (meteorology), Muscle fibre, Fiber type, Fiber, Physical medicine and rehabilitation, Anatomy, Medicine, Chemistry, Physical therapy, Animal science, Skeletal muscle, Biology, Physics
- MeSH
- humans, potassium, water, carrier proteins, muscle proteins, protein isoforms, rna, messenger, exercise, immersion, adaptation, physiological, adult, male, sodium-potassium-exchanging atpase, cold temperature, muscle fibers, skeletal, resistance training, young adult, high-intensity interval training
6 authors
From DK, AU
- Danny Christiansen · correspondingUniversity of Copenhagen; Victoria University
- David John BishopEdith Cowan University; Victoria University
- James R. BroatchVictoria University
- Jens BangsboUniversity of Copenhagen
- Michael J. McKennaVictoria University
- Robyn M. MurphyLa Trobe University
Abstract
Effects of regular use of cold-water immersion (CWI) on fiber type-specific adaptations in muscle K+ transport proteins to intense training, along with their relationship to changes in mRNA levels after the first training session, were investigated in humans. Nineteen recreationally active men (24 ± 6 yr, 79.5 ± 10.8 kg, 44.6 ± 5.8 ml·kg-1·min-1) completed six weeks of sprint-interval cycling, either without (passive rest; CON) or with training sessions followed by CWI (15 min at 10°C; COLD). Muscle biopsies were obtained before and after training to determine abundance of Na+, K+-ATPase isoforms (α1-3, β1-3) and phospholemman (FXYD1) and after recovery treatments (+0 h and +3 h) on the first day of training to measure mRNA content. Training increased ( P 1 and β3 in both fiber types and β1 in type-II fibers and decreased FXYD1 in type-I fibers, whereas α2 and α3 abundance was not altered by training ( P > 0.05). CWI after each session did not influence responses to training ( P > 0.05). However, α2 mRNA increased after the first session in COLD (+0 h, P 0.05). In both conditions, α1 and β3 mRNA increased (+3 h; P 2 mRNA decreased (+3 h; P 3, β1, and FXYD1 mRNA remained unchanged ( P > 0.05) after the first session. In summary, Na+,K+-ATPase isoforms are differently regulated in type I and II muscle fibers by sprint-interval training in humans, which, for most isoforms, do not associate with changes in mRNA levels after the first training session. CWI neither impairs nor improves protein adaptations to intense training of importance for muscle K+ regulation. NEW & NOTEWORTHY Although cold-water immersion (CWI) after training and competition has become a routine for many athletes, limited published evidence exists regarding its impact on training adaptation. Here, we show that CWI can be performed regularly without impairing training-induced adaptations at the fiber-type level important for muscle K+ handling. Furthermore, sprint-interval training invoked fiber type-specific adaptations in K+ transport proteins, which may explain the dissociated responses of whole-muscle protein levels and K+ transport function to training previously reported.
Abstract via Europe PMC. Copyright remains with the authors or publisher.
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