Literature DB >> 12388461

Determinants of maximal oxygen uptake in severe acute hypoxia.

J A L Calbet1, R Boushel, G Rådegran, H Søndergaard, P D Wagner, B Saltin.   

Abstract

To unravel the mechanisms by which maximal oxygen uptake (VO2 max) is reduced with severe acute hypoxia in humans, nine Danish lowlanders performed incremental cycle ergometer exercise to exhaustion, while breathing room air (normoxia) or 10.5% O2 in N2 (hypoxia, approximately 5,300 m above sea level). With hypoxia, exercise PaO2 dropped to 31-34 mmHg and arterial O2 content (CaO2) was reduced by 35% (P < 0.001). Forty-one percent of the reduction in CaO2 was explained by the lower inspired O2 pressure (PiO2) in hypoxia, whereas the rest was due to the impairment of the pulmonary gas exchange, as reflected by the higher alveolar-arterial O2 difference in hypoxia (P < 0.05). Hypoxia caused a 47% decrease in VO2 max (a greater fall than accountable by reduced CaO2). Peak cardiac output decreased by 17% (P < 0.01), due to equal reductions in both peak heart rate and stroke VOlume (P < 0.05). Peak leg blood flow was also lower (by 22%, P < 0.01). Consequently, systemic and leg O2 delivery were reduced by 43 and 47%, respectively, with hypoxia (P < 0.001) correlating closely with VO2 max (r = 0.98, P < 0.001). Therefore, three main mechanisms account for the reduction of VO2 max in severe acute hypoxia: 1) reduction of PiO2, 2) impairment of pulmonary gas exchange, and 3) reduction of maximal cardiac output and peak leg blood flow, each explaining about one-third of the loss in VO2 max.

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Year:  2002        PMID: 12388461     DOI: 10.1152/ajpregu.00155.2002

Source DB:  PubMed          Journal:  Am J Physiol Regul Integr Comp Physiol        ISSN: 0363-6119            Impact factor:   3.619


  75 in total

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Authors:  J A L Calbet; M Jensen-Urstad; G van Hall; H-C Holmberg; H Rosdahl; B Saltin
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3.  Expiratory muscle loading increases intercostal muscle blood flow during leg exercise in healthy humans.

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Review 4.  Regulation of exercise blood flow: Role of free radicals.

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5.  The rate of fatigue accumulation as a sensed variable.

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6.  Ageing reduces the compensatory vasodilatation during hypoxic exercise: the role of nitric oxide.

Authors:  Darren P Casey; Branton G Walker; Timothy B Curry; Michael J Joyner
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7.  Arterial oxygenation influences central motor output and exercise performance via effects on peripheral locomotor muscle fatigue in humans.

Authors:  Markus Amann; Marlowe W Eldridge; Andrew T Lovering; Michael K Stickland; David F Pegelow; Jerome A Dempsey
Journal:  J Physiol       Date:  2006-06-22       Impact factor: 5.182

Review 8.  Red blood cell volume and the capacity for exercise at moderate to high altitude.

Authors:  Robert A Jacobs; Carsten Lundby; Paul Robach; Max Gassmann
Journal:  Sports Med       Date:  2012-08-01       Impact factor: 11.136

9.  Intermittent short-term graded running performance in middle-distance runners in hypobaric hypoxia.

Authors:  Takeshi Ogawa; Keiichi Ohba; Yoshiharu Nabekura; Jun Nagai; Keiji Hayashi; Hiroyuki Wada; Takeshi Nishiyasu
Journal:  Eur J Appl Physiol       Date:  2005-04-07       Impact factor: 3.078

10.  Sympathetic restraint of muscle blood flow during hypoxic exercise.

Authors:  Michael K Stickland; Curtis A Smith; Benjamin J Soriano; Jerome A Dempsey
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2009-03-18       Impact factor: 3.619

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