Literature DB >> 3700306

Effects of exercise in normoxia and acute hypoxia on respiratory muscle metabolites.

R F Fregosi, J A Dempsey.   

Abstract

We determined changes in rat plantaris, diaphragm, and intercostal muscle metabolites following exercise of various intensities and durations, in normoxia and hypoxia (FIO2 = 0.12). Marked alveolar hyperventilation occurred during all exercise conditions, suggesting that respiratory muscle motor activity was high. [ATP] was maintained at rest levels in all muscles during all normoxic and hypoxic exercise bouts, but at the expense of creatine phosphate (CP) in plantaris muscle and diaphragm muscle following brief exercise at maximum O2 uptake (VO2max) in normoxia. In normoxic exercise plantaris [glycogen] fell as exercise exceeded 60% VO2max, and was reduced to less than 50% control during exhaustive endurance exercise (68% VO2max for 54 min and 84% for 38 min). Respiratory muscle [glycogen] was unchanged at VO2max as well as during either type of endurance exercise. Glucose 6-phosphate (G6P) rose consistently during heavy exercise in diaphragm but not in plantaris. With all types of exercise greater than 84% VO2max, lactate concentration ([LA]) in all three muscles rose to the same extent as arterial [LA], except at VO2max, where respiratory muscle [LA] rose to less than half that in arterial blood or plantaris. Exhaustive exercise in hypoxia caused marked hyperventilation and reduced arterial O2 content; glycogen fell in plantaris (20% of control) and in diaphragm (58%) and intercostals (44%). We conclude that respiratory muscle glycogen stores are spared during exhaustive exercise in the face of substantial glycogen utilization in plantaris, even under conditions of extreme hyperventilation and reduced O2 transport. This sparing effect is due primarily to G6P inhibition of glycogen phosphorylase in diaphragm muscle. The presence of elevated [LA] in the absence of glycogen utilization suggests that increased lactate uptake, rather than lactate production, occurred in the respiratory muscles during exhaustive exercise.

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Year:  1986        PMID: 3700306     DOI: 10.1152/jappl.1986.60.4.1274

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


  13 in total

1.  The effect of inspiratory muscle training upon maximum lactate steady-state and blood lactate concentration.

Authors:  Alison K McConnell; Graham R Sharpe
Journal:  Eur J Appl Physiol       Date:  2005-03-12       Impact factor: 3.078

2.  Effects of exercise-induced arterial hypoxaemia and work rate on diaphragmatic fatigue in highly trained endurance athletes.

Authors:  Ioannis Vogiatzis; Olga Georgiadou; Ifigenia Giannopoulou; Maria Koskolou; Spyros Zakynthinos; Konstantinos Kostikas; Epaminondas Kosmas; Harrieth Wagner; Eleni Peraki; Antonia Koutsoukou; Nickolaos Koulouris; Peter D Wagner; Charis Roussos
Journal:  J Physiol       Date:  2006-01-26       Impact factor: 5.182

3.  Maximal voluntary hyperpnoea increases blood lactate concentration during exercise.

Authors:  Michael A Johnson; Graham R Sharpe; Alison K McConnell
Journal:  Eur J Appl Physiol       Date:  2006-02-01       Impact factor: 3.078

4.  Inspiratory resistive loading after all-out exercise improves subsequent performance.

Authors:  Gaspar R Chiappa; Jorge P Ribeiro; Cristiano N Alves; Paulo J C Vieira; João Dubas; Fernando Queiroga; Laura D Batista; Antonio C Silva; J Alberto Neder
Journal:  Eur J Appl Physiol       Date:  2009-03-06       Impact factor: 3.078

5.  Changes in volume densities and distribution of mitochondria in rat skeletal muscle after chronic hypoxia.

Authors:  G J van Ekeren; R C Sengers; A M Stadhouders
Journal:  Int J Exp Pathol       Date:  1992-02       Impact factor: 1.925

Review 6.  Guidelines for animal exercise and training protocols for cardiovascular studies.

Authors:  David C Poole; Steven W Copp; Trenton D Colburn; Jesse C Craig; David L Allen; Michael Sturek; Donal S O'Leary; Irving H Zucker; Timothy I Musch
Journal:  Am J Physiol Heart Circ Physiol       Date:  2020-03-20       Impact factor: 4.733

7.  Temporal characteristics of exercise-induced diaphragmatic fatigue.

Authors:  Bruno Archiza; Joseph F Welch; Caitlin M Geary; Grayson P Allen; Audrey Borghi-Silva; A William Sheel
Journal:  J Appl Physiol (1985)       Date:  2017-12-28

8.  Exercise-induced diaphragmatic fatigue in healthy humans.

Authors:  B D Johnson; M A Babcock; O E Suman; J A Dempsey
Journal:  J Physiol       Date:  1993-01       Impact factor: 5.182

9.  Effect of acute hypoxia on respiratory muscle fatigue in healthy humans.

Authors:  Samuel Verges; Damien Bachasson; Bernard Wuyam
Journal:  Respir Res       Date:  2010-08-11

10.  Contribution of respiratory muscle blood flow to exercise-induced diaphragmatic fatigue in trained cyclists.

Authors:  Ioannis Vogiatzis; Dimitris Athanasopoulos; Robert Boushel; Jordan A Guenette; Maria Koskolou; Maroula Vasilopoulou; Harrieth Wagner; Charis Roussos; Peter D Wagner; Spyros Zakynthinos
Journal:  J Physiol       Date:  2008-10-02       Impact factor: 5.182

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