Background: The impact of hyperoxia on exercise limitation is still incompletely understood. Objectives: We investigated to which extent breathing hyperoxia enhances the exercise performance of healthy subjects and which physiologic mechanisms are involved. Methods: A total of 32 healthy volunteers (43 ± 15 years, 12 women) performed 4 bicycle exercise tests to exhaustion with ramp and constant-load protocols (at 75% of the maximal workload [Wmax] on FiO2 0.21) on separate occasions while breathing ambient (FiO2 0.21) or oxygen-enriched air (FiO2 0.50) in a random, blinded order. Workload, endurance, gas exchange, pulse oximetry (SpO2), and cerebral (CTO) and quadriceps muscle tissue oxygenation (QMTO) were measured. Results: During the final 15 s of ramp exercising with FiO2 0.50, Wmax (mean ± SD 270 ± 80 W), SpO2 (99 ± 1%), and CTO (67 ± 9%) were higher and the Borg CR10 Scale dyspnea score was lower (4.8 ± 2.2) than the corresponding values with FiO2 0.21 (Wmax 257 ± 76 W, SpO2 96 ± 3%, CTO 61 ± 9%, and Borg CR10 Scale dyspnea score 5.7 ± 2.6, p < 0.05, all comparisons). In constant-load exercising with FiO2 0.50, endurance was longer than with FiO2 0.21 (16 min 22 s ± 7 min 39 s vs. 10 min 47 s ± 5 min 58 s). With FiO2 0.50, SpO2 (99 ± 0%) and QMTO (69 ± 8%) were higher than the corresponding isotime values to end-exercise with FiO2 0.21 (SpO2 96 ± 4%, QMTO 66 ± 9%), while minute ventilation was lower in hyperoxia (82 ± 18 vs. 93 ± 23 L/min, p < 0.05, all comparisons). Conclusion: In healthy subjects, hyperoxia increased maximal power output and endurance. It improved arterial, cerebral, and muscle tissue oxygenation, while minute ventilation and dyspnea perception were reduced. The findings suggest that hyperoxia enhanced cycling performance through a more efficient pulmonary gas exchange and a greater availability of oxygen to muscles and the brain (cerebral motor and sensory neurons).

1.
Amann M, Calbet JA: Convective oxygen transport and fatigue. J Appl Physiol (1985) 2008;104:861-870.
2.
Noakes TD, Peltonen JE, Rusko HK: Evidence that a central governor regulates exercise performance during acute hypoxia and hyperoxia. J Exp Biol 2001;204:3225-3234.
3.
Allen DG, Lännergren J, Westerblad H: Muscle cell function during prolonged activity: cellular mechanisms of fatigue. Exp Physiol 1995;80:497-527.
4.
Barry BK, Enoka RM: The neurobiology of muscle fatigue: 15 years later. Integr Comp Biol 2007;47:465-473.
5.
Edwards RH: Human muscle function and fatigue. Ciba Found Symp 1981;82:1-18.
6.
Bhambhani Y, Malik R, Mookerjee S: Cerebral oxygenation declines at exercise intensities above the respiratory compensation threshold. Respir Physiol Neurobiol 2007;156:196-202.
7.
Subudhi AW, Dimmen AC, Roach RC: Effects of acute hypoxia on cerebral and muscle oxygenation during incremental exercise. J Appl Physiol (1985) 2007;103:177-183.
8.
Subudhi AW, Lorenz MC, Fulco CS, Roach RC: Cerebrovascular responses to incremental exercise during hypobaric hypoxia: effect of oxygenation on maximal performance. Am J Physiol Heart Circ Physiol 2008;294:H164-H171.
9.
Subudhi AW, Miramon BR, Granger ME, Roach RC: Frontal and motor cortex oxygenation during maximal exercise in normoxia and hypoxia. J Appl Physiol (1985) 2009;106:1153-1158.
10.
Vogiatzis I, Louvaris Z, Habazettl H, Athanasopoulos D, Andrianopoulos V, Cherouveim E, Wagner H, Roussos C, Wagner PD, Zakynthinos S: Frontal cerebral cortex blood flow, oxygen delivery and oxygenation during normoxic and hypoxic exercise in athletes. J Physiol 2011;589(pt 16):4027-4039.
11.
Oussaidene K, Prieur F, Bougault V, Borel B, Matran R, Mucci P: Cerebral oxygenation during hyperoxia-induced increase in exercise tolerance for untrained men. Eur J Appl Physiol 2013;113:2047-2056.
12.
American Thoracic Society; American College of Chest Physicians: ATS/ACCP Statement on cardiopulmonary exercise testing. Am J Respir Crit Care Med 2003;167:211-277.
13.
Borg GA: Psychophysical bases of perceived exertion. Med Sci Sports Exerc 1982;14:377-381.
14.
Huszczuk A, Whipp BJ, Wasserman K: A respiratory gas exchange simulator for routine calibration in metabolic studies. Eur Respir J 1990;3:465-468.
15.
Bingisser R, Kaplan V, Scherer T, Russi EW, Bloch KE: Effect of training on repeatability of cardiopulmonary exercise performance in normal men and women. Med Sci Sports Exerc 1997;29:1499-1504.
16.
Ulrich S, Nussbaumer-Ochsner Y, Vasic I, Hasler E, Latshang TD, Kohler M, Muehlemann T, Wolf M, Bloch KE: Cerebral oxygenation in patients with OSA: effects of hypoxia at altitude and impact of acetazolamide. Chest 2014;146:299-308.
17.
Grataloup O, Prieur F, Busso T, Castells J, Favier FB, Denis C, Benoit H: Effect of hyperoxia on maximal O2 uptake in exercise-induced arterial hypoxaemic subjects. Eur J Appl Physiol 2005;94:641-645.
18.
Peltonen JE, Tikkanen HO, Rusko HK: Cardiorespiratory responses to exercise in acute hypoxia, hyperoxia and normoxia. Eur J Appl Physiol 2001;85:82-88.
19.
Prieur F, Benoit H, Busso T, Castells J, Geyssant A, Denis C: Effects of moderate hyperoxia on oxygen consumption during submaximal and maximal exercise. Eur J Appl Physiol 2002;88:235-242.
20.
Hogan MC, Cox RH, Welch HG: Lactate accumulation during incremental exercise with varied inspired oxygen fractions. J Appl Physiol Respir Environ Exerc Physiol 1983;55:1134-1140.
21.
Walsh ML, Banister EW: The influence of inspired oxygen on the oxygen uptake response to ramp exercise. Eur J Appl Physiol Occup Physiol 1995;72:71-75.
22.
Macdonald M, Pedersen PK, Hughson RL: Acceleration of V•O2 kinetics in heavy submaximal exercise by hyperoxia and prior high-intensity exercise. J Appl Physiol (1985) 1997;83:1318-1325.
23.
Linnarsson D, Karlsson J, Fagraeus L, Saltin B: Muscle metabolites and oxygen deficit with exercise in hypoxia and hyperoxia. J Appl Physiol 1974;36:399-402.
24.
Nielsen HB, Madsen P, Svendsen LB, Roach RC, Secher NH: The influence of PaO2, pH and SaO2 on maximal oxygen uptake. Acta Physiol Scand 1998;164:89-87.
25.
Ekblom B, Huot R, Stein EM, Thorstensson AT: Effect of changes in arterial oxygen content on circulation and physical performance. J Appl Physiol 1975;39:71-75.
26.
Houssière A, Najem B, Cuylits N, Cuypers S, Naeije R, van de Borne P: Hyperoxia enhances metaboreflex sensitivity during static exercise in humans. Am J Physiol Heart Circ Physiol 2006;291:H210-H215.
27.
Amann M, Romer LM, Subudhi AW, Pegelow DF, Dempsey JA: Severity of arterial hypoxaemia affects the relative contributions of peripheral muscle fatigue to exercise performance in healthy humans. J Physiol 2007;581(pt 1):389-403.
28.
Seifert JG, Subudhi AW, Fu MX, Riska KL, John JC, Shecterle LM, St Cyr JA: The role of ribose on oxidative stress during hypoxic exercise: a pilot study. J Med Food 2009;12:690-693.
29.
Shibuya K, Tanaka J, Kuboyama N, Ogaki T: Cerebral oxygenation during intermittent supramaximal exercise. Respir Physiol Neurobiol 2004;140:165-172.
30.
Miller EK, Cohen JD: An integrative theory of prefrontal cortex function. Annu Rev Neurosci 2001;24:167-202.
31.
Suzuki M, Miyai I, Ono T, Oda I, Konishi I, Kochiyama T, Kubota K: Prefrontal and premotor cortices are involved in adapting walking and running speed on the treadmill: an optical imaging study. Neuroimage 2004;23:1020-1026.
32.
Rasmussen P, Dawson EA, Nybo L, van Lieshout JJ, Secher NH, Gjedde A: Capillary-oxygenation-level-dependent near-infrared spectrometry in frontal lobe of humans. J Cereb Blood Flow Metab 2007;27:1082-1093.
33.
Wasserman K: The anaerobic threshold measurement in exercise testing. Clin Chest Med 1984;5:77-88.
34.
Ainslie PN, Barach A, Murrell C, Hamlin M, Hellemans J, Ogoh S: Alterations in cerebral autoregulation and cerebral blood flow velocity during acute hypoxia: rest and exercise. Am J Physiol Heart Circ Physiol 2007;292: H976-H983.
35.
Peltonen JE, Rusko HK, Rantamäki J, Sweins K, Niittymäki S, Viitasalo JT: Effects of oxygen fraction in inspired air on force production and electromyogram activity during ergometer rowing. Eur J Appl Physiol Occup Physiol 1997;76:495-503.
36.
Hogan MC, Welch HG: Effect of varied lactate levels on bicycle ergometer performance. J Appl Physiol Respir Environ Exerc Physiol 1984;57:507-513.
37.
Chronos N, Adams L, Guz A: Effect of hyperoxia and hypoxia on exercise-induced breathlessness in normal subjects. Clin Sci (Lond) 1988;74:531-537.
38.
Nielsen AN, Mizuno M, Ratkevicius A, Mohr T, Rohde M, Mortensen SA, Quistorff B: No effect of antioxidant supplementation in triathletes on maximal oxygen uptake, 31P-NMRS detected muscle energy metabolism and muscle fatigue. Int J Sports Med 1999;20:154-158.
39.
Wilson BA, Welch HG, Liles JN: Effects of hyperoxic gas mixtures on energy metabolism during prolonged work. J Appl Physiol 1975;39:267-271.
40.
Wilson GD, Welch HG: Effects of varying concentrations of N2/O2 and He/O2 on exercise tolerance in man. Med Sci Sports Exerc 1980;12:380-384.
41.
Adams RP, Welch HG: Oxygen uptake, acid-base status, and performance with varied inspired oxygen fractions. J Appl Physiol Respir Environ Exerc Physiol 1980;49:863-868.
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