Literature DB >> 22132792

Pre-cooling with ice slurry ingestion leads to similar run times to exhaustion in the heat as cold water immersion.

Rodney Siegel1, Joseph Maté, Greig Watson, Kazunori Nosaka, Paul B Laursen.   

Abstract

The purpose of this study was to compare the effects of pre-exercise ice slurry ingestion and cold water immersion on submaximal running time in the heat. On three separate occasions, eight males ran to exhaustion at their first ventilatory threshold in the heat (34.0 ± 0.1 ° C, 52 ± 3% relative humidity) following one of three 30 min pre-exercise manoeuvres: (1) ice slurry ingestion; (2) cold water immersion; or (3) warm fluid ingestion (control). Running time was longer following cold water immersion (56.8 ± 5.6 min; P = 0.008) and ice slurry ingestion (52.7 ± 8.4 min; P = 0.005) compared with control (46.7 ± 7.2 min), but not significantly different between cold water immersion and ice slurry ingestion (P = 0.335). During exercise, rectal temperature was lower with cold water immersion from 15 and 20 min into exercise compared with control and ice slurry ingestion, respectively, and remained lower until 40 min (P = 0.001). At exhaustion rectal temperature was significantly higher following ice slurry ingestion (39.76 ± 0.36 ° C) compared with control (39.48 ± 0.36 ° C; P = 0.042) and tended to be higher than cold water immersion (39.48 ± 0.34 ° C; P = 0.065). As run times were similar between conditions, ice slurry ingestion may be a comparable form of pre-cooling to cold water immersion.

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Year:  2011        PMID: 22132792     DOI: 10.1080/02640414.2011.625968

Source DB:  PubMed          Journal:  J Sports Sci        ISSN: 0264-0414            Impact factor:   3.337


  31 in total

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Review 2.  Warm-Up Strategies for Sport and Exercise: Mechanisms and Applications.

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Review 3.  Precooling methods and their effects on athletic performance : a systematic review and practical applications.

Authors:  Megan Ross; Chris Abbiss; Paul Laursen; David Martin; Louise Burke
Journal:  Sports Med       Date:  2013-03       Impact factor: 11.136

4.  A Mixed-Method Approach of Pre-Cooling Enhances High-Intensity Running Performance in the Heat.

Authors:  Minxiao Xu; Zhaozhao Wu; Yanan Dong; Chaoyi Qu; Yaoduo Xu; Fei Qin; Zhongwei Wang; George P Nassis; Jiexiu Zhao
Journal:  J Sports Sci Med       Date:  2021-03-01       Impact factor: 2.988

Review 5.  Heat-related issues and practical applications for Paralympic athletes at Tokyo 2020.

Authors:  Katy E Griggs; Ben T Stephenson; Michael J Price; Victoria L Goosey-Tolfrey
Journal:  Temperature (Austin)       Date:  2019-06-27

Review 6.  Sports and environmental temperature: From warming-up to heating-up.

Authors:  Sébastien Racinais; Scott Cocking; Julien D Périard
Journal:  Temperature (Austin)       Date:  2017-08-04

7.  Precooling, Hyperthermia, and Postexercise Cooling Rates in Humans Wearing American Football Uniforms.

Authors:  Jeremy Taylor; Kevin C Miller
Journal:  J Athl Train       Date:  2019-07-25       Impact factor: 2.860

8.  Physiological and perceptual effects of precooling in wheelchair basketball athletes.

Authors:  Peta Forsyth; Kate Pumpa; Emma Knight; Joanna Miller
Journal:  J Spinal Cord Med       Date:  2016-05-18       Impact factor: 1.985

Review 9.  Consensus Recommendations on Training and Competing in the Heat.

Authors:  Sébastien Racinais; Juan-Manuel Alonso; Aaron J Coutts; Andreas D Flouris; Olivier Girard; José González-Alonso; Christophe Hausswirth; Ollie Jay; Jason K W Lee; Nigel Mitchell; George P Nassis; Lars Nybo; Babette M Pluim; Bart Roelands; Michael N Sawka; Jonathan Wingo; Julien D Périard
Journal:  Sports Med       Date:  2015-07       Impact factor: 11.136

Review 10.  Pre-cooling for endurance exercise performance in the heat: a systematic review.

Authors:  Paul R Jones; Christian Barton; Dylan Morrissey; Nicola Maffulli; Stephanie Hemmings
Journal:  BMC Med       Date:  2012-12-18       Impact factor: 8.775

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