Literature DB >> 31095458

Diurnal repeated exercise promotes slow-wave activity and fast-sigma power during sleep with increase in body temperature: a human crossover trial.

Sayaka Aritake-Okada1,2, Kosuke Tanabe3, Yoshiko Mochizuki4, Ryuji Ochiai5, Masanobu Hibi5, Kazuya Kozuma5, Yoshihisa Katsuragi5, Masashi Ganeko3, Noriko Takeda6, Sunao Uchida1.   

Abstract

The effects of exercise on sleep have been explored from various perspectives, but little is known about how the effects of acute exercise on sleep are produced through physiological functions. We used a protocol of multiple daytime sessions of moderate-intensity aerobic exercise and examined the subsequent effects on sleep structure, core body temperature (CBT), distal-proximal skin temperature gradient (DPG), and subjective parameters. Fourteen healthy men who did not exercise regularly were evaluated under the baseline (no exercise) and exercise conditions on a within-subject crossover basis. Under the exercise condition, each participant performed a 40-min aerobic workout at 40% of maximal oxygen intake, four times between morning and early evening. We observed a 33% increase in slow-wave sleep (SWS; P = 0.005), as well as increases in slow-wave activity (SWA; P = 0.026), the fast-sigma power/SWA ratio (P = 0.005), and subjective sleep depth and restorativeness the following morning. Moreover, both CBT and the DPG increased during sleep after exercise (P = 0.021 and P = 0.047, respectively). Regression analysis identified an increased nocturnal DPG during sleep after exercise as a factor in the increase in SWA. The fast-sigma/SWA ratio correlated with CBT. The performance of acute exercise promotes SWS with nocturnal elevation in the DPG. Both CBT and fast-sigma power may play a role in the specific physiological status of the body after exercise. NEW & NOTEWORTHY We used multiple daytime sessions of moderate-intensity aerobic exercise to examine the effects on the sleep structure, core body temperature (CBT), distal-proximal skin temperature gradient (DPG), and subjective parameters. Significant increases in slow-wave activity (SWA), CBT, DPG, fast-sigma power, and subjective parameters were observed during the night and the following morning. Nocturnal DPG is a factor in the increased SWA.

Entities:  

Keywords:  body temperature; distal-proximal gradient; exercise; sigma power; slow-wave activity

Year:  2019        PMID: 31095458     DOI: 10.1152/japplphysiol.00765.2018

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  5 in total

1.  Preliminary Results: The Impact of Smartphone Use and Short-Wavelength Light during the Evening on Circadian Rhythm, Sleep and Alertness.

Authors:  Christopher Höhn; Sarah R Schmid; Christina P Plamberger; Kathrin Bothe; Monika Angerer; Georg Gruber; Belinda Pletzer; Kerstin Hoedlmoser
Journal:  Clocks Sleep       Date:  2021-01-22

2.  Exercise improves the quality of slow-wave sleep by increasing slow-wave stability.

Authors:  Insung Park; Javier Díaz; Sumire Matsumoto; Kaito Iwayama; Yoshiharu Nabekura; Hitomi Ogata; Momoko Kayaba; Atsushi Aoyagi; Katsuhiko Yajima; Makoto Satoh; Kumpei Tokuyama; Kaspar E Vogt
Journal:  Sci Rep       Date:  2021-02-24       Impact factor: 4.379

3.  The impact of tethered recording techniques on activity and sleep patterns in rats.

Authors:  Katharina Aulehner; Jack Bray; Ines Koska; Claudia Pace; Rupert Palme; Matthias Kreuzer; Bettina Platt; Thomas Fenzl; Heidrun Potschka
Journal:  Sci Rep       Date:  2022-02-24       Impact factor: 4.379

4.  Autonomic Modulation During Baseline and Recovery Sleep in Adult Sleepwalkers.

Authors:  Geneviève Scavone; Andrée-Ann Baril; Jacques Montplaisir; Julie Carrier; Alex Desautels; Antonio Zadra
Journal:  Front Neurol       Date:  2021-06-24       Impact factor: 4.003

Review 5.  The role of exercise-induced peripheral factors in sleep regulation.

Authors:  Xiao Tan; Lieve T van Egmond; Jonathan Cedernaes; Christian Benedict
Journal:  Mol Metab       Date:  2020-10-09       Impact factor: 7.422

  5 in total

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