Caffeine intake enhances peak oxygen uptake and performance during high-intensity cycling exercise in moderate hypoxia.
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O. Girard | T. Mündel | Tze-Huan Lei | Yinhang Cao | Ran Wang | Qiyang Qin | Li Guo
[1] T. Ogawa,et al. CO2-Enriched Air Inhalation Modulates the Ventilatory and Metabolic Responses of Endurance Runners During Incremental Running Under Hypobaric Hypoxia. , 2022, High altitude medicine & biology.
[2] J. Grgic,et al. International society of sports nutrition position stand: caffeine and exercise performance. , 2021, Journal of the International Society of Sports Nutrition.
[3] R. Cunha,et al. Neuronal adenosine A2A receptors signal ergogenic effects of caffeine , 2020, Scientific Reports.
[4] C. Cajochen,et al. In Athletes, the Diurnal Variations in Maximum Oxygen Uptake Are More Than Twice as Large as the Day-to-Day Variations , 2019, Front. Physiol..
[5] H. Westerblad,et al. Toxic doses of caffeine are needed to increase skeletal muscle contractility. , 2019, American journal of physiology. Cell physiology.
[6] T. Ogawa,et al. Expiratory flow limitation under moderate hypobaric hypoxia does not influence ventilatory responses during incremental running in endurance runners , 2019, Physiological reports.
[7] J. Sawynok. Adenosine receptor targets for pain , 2016, Neuroscience.
[8] Samuele M. Marcora,et al. Effects of caffeine on neuromuscular fatigue and performance during high-intensity cycling exercise in moderate hypoxia , 2016, European Journal of Applied Physiology.
[9] M. Wilhelm,et al. Acute Effects of Caffeine on Heart Rate Variability, Blood Pressure and Tidal Volume in Paraplegic and Tetraplegic Compared to Able-Bodied Individuals: A Randomized, Blinded Trial , 2016, PloS one.
[10] J. López-Barneo,et al. Oxygen sensing by the carotid body: mechanisms and role in adaptation to hypoxia. , 2016, American journal of physiology. Cell physiology.
[11] M. Spencer,et al. Caffeine improves performance in double poling during acute exposure to 2,000-m altitude. , 2015, Journal of applied physiology.
[12] Robert F Chapman,et al. The individual response to training and competition at altitude , 2013, British Journal of Sports Medicine.
[13] D. Bishop,et al. Caffeine Increases Anaerobic Work and Restores Cycling Performance following a Protocol Designed to Lower Endogenous Carbohydrate Availability , 2013, PloS one.
[14] M. Ribeiro,et al. Chronic Caffeine Intake in Adult Rat Inhibits Carotid Body Sensitization Produced by Chronic Sustained Hypoxia but Maintains Intact Chemoreflex Output , 2012, Molecular Pharmacology.
[15] R. Timón,et al. Total plasma fatty acid responses to maximal incremental exercise after caffeine ingestion , 2012 .
[16] M. Leveritt,et al. The effects of different doses of caffeine on endurance cycling time trial performance , 2012, Journal of sports sciences.
[17] Jessica E. Duhon,et al. Ergogenic Effects of Caffeine on Simulated Time-Trial Performance Are Independent of Fitness Level , 2011 .
[18] J. Del Coso,et al. Prevalence of caffeine use in elite athletes following its removal from the World Anti-Doping Agency list of banned substances. , 2011, Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme.
[19] O P Mathew,et al. Apnea of prematurity: pathogenesis and management strategies , 2011, Journal of Perinatology.
[20] N. Chester,et al. Caffeine consumption amongst British athletes following changes to the 2004 WADA prohibited list. , 2008, International journal of sports medicine.
[21] D. Spina,et al. Adenosine receptors and asthma , 2008, British journal of pharmacology.
[22] B. Levine,et al. : what do we know, and what do we still need to know? , 2008, The Journal of physiology.
[23] K. Nosaka,et al. Reliability of time-to-exhaustion versus time-trial running tests in runners. , 2007, Medicine and science in sports and exercise.
[24] P. Smith,et al. Effects of caffeine ingestion on rating of perceived exertion during and after exercise: a meta‐analysis , 2005, Scandinavian journal of medicine & science in sports.
[25] C. Denis,et al. Decrease in peak heart rate with acute hypoxia in relation to sea level V̇O2max , 2003, European Journal of Applied Physiology.
[26] B. Saltin,et al. Determinants of maximal oxygen uptake in severe acute hypoxia. , 2003, American journal of physiology. Regulatory, integrative and comparative physiology.
[27] E. Cafarelli,et al. Caffeine increases endurance and attenuates force sensation during submaximal isometric contractions. , 2001, Journal of applied physiology.
[28] J. A. Carrillo,et al. Clinically Significant Pharmacokinetic Interactions Between Dietary Caffeine and Medications , 2000, Clinical pharmacokinetics.
[29] C. Prefaut,et al. Evidence for an inadequate hyperventilation inducing arterial hypoxemia at submaximal exercise in all highly trained endurance athletes. , 2000, Medicine and science in sports and exercise.
[30] T. Gavin,et al. Ventilation's role in the decline in VO2max and SaO2 in acute hypoxic exercise. , 1998, Medicine and science in sports and exercise.
[31] A. de Haan,et al. The Effect of Different Dosages of Caffeine on Endurance Performance Time , 1995, International journal of sports medicine.
[32] J. Dempsey,et al. Carotid bodies are required for ventilatory acclimatization to chronic hypoxia. , 1986, Journal of applied physiology.
[33] J. Weil,et al. Variability of ventilatory responses to hypoxia and hypercapnia. , 1977, Journal of applied physiology: respiratory, environmental and exercise physiology.
[34] Jacob Cohen. Statistical Power Analysis for the Behavioral Sciences , 1969, The SAGE Encyclopedia of Research Design.
[35] David T. Martin,et al. Defining Training and Performance Caliber: A Participant Classification Framework. , 2022, International journal of sports physiology and performance.
[36] B. Kayser,et al. Fatigue and Exhaustion in Hypoxia: The Role of Cerebral Oxygenation. , 2016, High altitude medicine & biology.
[37] R. Spealman,et al. Behavioral and physiological effects of xanthines in nonhuman primates , 1997, Psychopharmacology.
[38] R. Goldstein,et al. Effect of caffeine on ventilatory responses to hypercapnia, hypoxia, and exercise in humans. , 1990, Journal of applied physiology.
[39] G. Borg. Psychophysical bases of perceived exertion. , 1982, Medicine and science in sports and exercise.