Repeated familiarisation with hypohydration attenuates the performance decrement caused by hypohydration during treadmill running
Fleming J, James LJ
Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme · 25 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
- Controlled clinical trial (classified by our AI screen)
- Studied in
- People
- Main outcome
- Health markers and function
Who paid for it
- Funding
- Funding not disclosed
Publication
- Published
- 2013-07-27 · Appl Physiol Nutr Metab · vol. 39 · issue 2 · pp. 124–129
- Publisher
- NRC Research Press
- Cited
- 35 citations · more than 83% of similar papers · 1.7× the field average
- References
- 44 works
- Access
- Paywalled
- Research areas
- Thermoregulation and physiological responses · Muscle metabolism and nutrition · Exercise and Physiological Responses
- Keywords
- Medicine, Rating of perceived exertion, Treadmill, Time trial, VO2 max, Heart rate, Habituation, Internal medicine, Cardiology, Physical therapy, Blood pressure
- MeSH
- humans, dehydration, exercise test, running, male, athletic performance, young adult
2 authors
From GB
- J FlemingNottingham Trent University
- Lewis John JamesLoughborough University; Nottingham Trent University
Abstract
This study examined the effect of repeated familiarisation to hypohydration on hypohydrated exercise performance. After familiarisation with the exercise protocol, 10 recreationally active males completed a euhydrated (EU-pre) and hypohydrated (HYPO-pre) trial, which involved a 45-min steady state run at 75% peak oxygen uptake (45SS) followed by a 5-km time trial (TT). Euhydration and hypohydration were induced by manipulating fluid intake in the 24-h pre-exercise and during the 45SS. Subjects then completed 4 habituation sessions that involved replication of the HYPO-pre trial, except they completed 60 min of running at 75% peak oxygen uptake and no TT. Subjects then replicated the euhydrated (EU-post) and hypohydrated (HYPO-post) trials. Body mass loss pre-TT was 0.2 (0.2)% (EU-pre), 2.4 (0.3)% (HYPO-pre), 0.1 (0.1)% (EU-post), and 2.4 (0.3)% (HYPO-post). TT performance was 5.8 (2.4)% slower during the HYPO-pre trial (1459 (250) s) than during the EU-pre trial (1381 (237) s) (p < 0.01), but only 1.2 (1.6)% slower during the HYPO-post trial (1381 (200) s) than during the EU-post trial (1366 (211) s) (p = 0.064). TT performance was not different between EU-pre and EU-post trials, but was 5.1 (2.3)% faster during the HYPO-post trial than the HYPO-pre trial (p < 0.01). Heart rate was greater during HYPO trials than EU trials (p < 0.001), whilst rating of perceived exertion (RPE) response was similar to TT time and was lower in the HYPO-post trial than the HYPO-pre trial (p < 0.01). In conclusion, hypohydration impaired 5-km running performance in subjects unfamiliar with the hypohydration protocol, but 4 familiarisation sessions designed to habituate subjects with the hypohydration protocol attenuated the performance decrement, seemingly via an attenuation of RPE during hypohydrated exercise.
Abstract via Europe PMC. Copyright remains with the authors or publisher.
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