AN EFFECTIVE HIGH-INTENSITY INTERMITTENT EXERCISE PROTOCOL FOR DECREASING SKELETAL MUSCLE GLYCOGEN

被引:0
|
作者
Shiose, Keisuke [1 ]
Tobina, Takuro
Higaki, Yasuki
Kiyonaga, Akira
Tanaka, Hiroaki
机构
[1] Fukuoka Univ, Grad Sch Sports & Hlth Sci, Jounan Ku, Fukuoka 8140180, Japan
关键词
Glycogen; muscle; exercise; Glycogenolysis; Lactic acid; ACTIVATED PROTEIN-KINASE; TRANSCRIPTIONAL REGULATION; ENDURANCE PERFORMANCE; MESSENGER-RNA; RECOVERY; METABOLISM; AMP; CARBOHYDRATE; PGC-1-ALPHA; EXPRESSION;
D O I
10.7600/jspfsm.60.493
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The decrease of muscle glycogen may be useful for the improvement of endurance performance. Intense anaerobic exercise requires a high rate of glycogen utilization, but consecutive intense anaerobic exercises induce a pronounced decline of external power and muscle glycogen consumption. We hypothesized that a long rest period between consecutive intense anaerobic exercises may aid in sustaining external power and glycogen consumption. Secondly, we hypothesized that active rest (AR) during the long resting period may be more effective than passive rest (PR). Six subjects performed four 30-second Wingate tests (WAnT) with a 4-minute recovery between each bout (Consecutive method). The subjects also performed a similar exercise procedure, but with a 30-minute seated resting period after the second bout (PR method). The other six male subjects performed four 30-second WAnTs with a 4-minute recovery between each bout, with 30-minutes of cycling at 40% (V) over dotO(2)max after the second bout (AR method). The subjects also performed PR method. The total work during the third and fourth bouts was greatest under the AR condition, followed by the PR condition, and finally the Consecutive method (p<0.05 for all comparisons). Blood lactate concentration during resting period was significantly lower, while muscle glycogen consumption was greater AR method than PR method (p<0.05 for both). A long resting period between consecutive intense anaerobic exercises may prevent the decline in external power and work. Additionally, AR has more favorable effects on muscle glycogen consumption, resulting in very low muscle glycogen levels, even with a small total amount of exercise. (Jpn. J. Phys. Fitness Sports Med., 60 (5) : 493 similar to 502 (2011))
引用
收藏
页码:493 / 502
页数:10
相关论文
共 50 条
  • [41] Decreased pancreatic amylase activity after acute high-intensity exercise and its effects on post-exercise muscle glycogen recovery
    Kondo, Saki
    Karasawa, Takuya
    Koike, Atsuko
    Tsutsui, Momoko
    Kunisawa, Jun
    Terada, Shin
    APPLIED PHYSIOLOGY NUTRITION AND METABOLISM, 2024, : 1035 - 1046
  • [42] Gene expression profile of muscle adaptation to high-intensity intermittent exercise training in young men
    Miyamoto-Mikami, Eri
    Tsuji, Katsunori
    Horii, Naoki
    Hasegawa, Natsuki
    Fujie, Shumpei
    Homma, Toshiyuki
    Uchida, Masataka
    Hamaoka, Takafumi
    Kanehisa, Hiroaki
    Tabata, Izumi
    Iemitsu, Motoyuki
    SCIENTIFIC REPORTS, 2018, 8
  • [43] Neuromuscular Fatigue and Metabolism during High-Intensity Intermittent Exercise
    Fiorenza, Matteo
    Hostrup, Morten
    Gunnarsson, Thomas P.
    Shirai, Yusuke
    Schena, Federico
    Iaia, F. Marcello
    Bangsbo, Jens
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2019, 51 (08) : 1642 - 1652
  • [44] Effect of High-Intensity Training in Normobaric Hypoxia on Thoroughbred Skeletal Muscle
    Nagahisa, Hiroshi
    Mukai, Kazutaka
    Ohmura, Hajime
    Takahashi, Toshiyuki
    Miyata, Hirofumi
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2016, 2016
  • [45] Effect of intermittent high-intensity exercise on gastric emptying in man
    Leiper, JB
    Broad, NP
    Maughan, RJ
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2001, 33 (08) : 1270 - 1278
  • [46] Effects of Trehalose Solutions at Different Concentrations on High-Intensity Intermittent Exercise Performance
    Hamada, Naomi
    Wadazumi, Tsuyoshi
    Hirata, Yoko
    Watanabe, Hitoshi
    Hongu, Nobuko
    Arai, Norie
    NUTRIENTS, 2022, 14 (09)
  • [47] Transcriptomic signatures of human single skeletal muscle fibers in response to high-intensity interval exercise
    Van der Stede, Thibaux
    Van de Loock, Alexia
    Lievens, Eline
    Yigit, Nurten
    Anckaert, Jasper
    Van Thienen, Ruud
    Weyns, Anneleen
    Mestdagh, Pieter
    Vandesompele, Jo
    Derave, Wim
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2024, 327 (05): : C1249 - C1262
  • [48] A proteomic analysis of the acute effects of high-intensity exercise on skeletal muscle proteins in fasted rats
    Guelfi, Kym J.
    Casey, Tammy M.
    Giles, Jeffrey J.
    Fournier, Paul A.
    Arthur, Peter G.
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 2006, 33 (10) : 952 - 957
  • [49] Effects of high-intensity intermittent swimming on PGC-1α protein expression in rat skeletal muscle
    Terada, S
    Kawanaka, K
    Goto, M
    Shimokawa, T
    Tabata, I
    ACTA PHYSIOLOGICA SCANDINAVICA, 2005, 184 (01): : 59 - 65
  • [50] The Effects of Low- and High-Glycemic Index Foods on High-Intensity Intermittent Exercise
    Little, Jonathan P.
    Chilibeck, Philip D.
    Ciona, Dawn
    Vandenberg, Albert
    Zello, Gordon A.
    INTERNATIONAL JOURNAL OF SPORTS PHYSIOLOGY AND PERFORMANCE, 2009, 4 (03) : 367 - 380