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Erschienen in: European Journal of Applied Physiology 2-3/2004

01.03.2004 | Original Article

Effect of low oxygen inhalation on changes in blood pH, lactate, and ammonia due to exercise

verfasst von: Takahide Kato, Yoshinori Matsumura, Atsuko Tsukanaka, Takeshi Harada, Mitsuo Kosaka, Nobuo Matsui

Erschienen in: European Journal of Applied Physiology | Ausgabe 2-3/2004

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Abstract

The present study examined the effect of hypoxia-induced respiratory alkalosis on exercise-induced metabolic acidosis and increases in plasma lactate and ammonia levels. Six male subjects underwent exercise of increasing intensity until exhaustion: (1) in normoxia (20.9% O2) (=MAX), (2) in hypoxia (12% O2) (=HP) in which hypoxic condition had been maintained from 60 min before to 30 min after exercise, and (3) the same intensity of exercise as HP in normoxia (=SUB). Arterialized blood was drawn from a superficial vein. Post-exercise blood pH was significantly higher in HP than in MAX (P<0.05), although plasma lactate was at the same level. For hypoxia as compared to normoxia, regression analysis confirmed a parallel shift of plasma lactate to higher pH levels indicating the effect of respiratory alkalosis (P<0.01). After exercise plasma levels of ammonia were lower in HP than in MAX (P<0.05). Regression analysis between ammonia and pH revealed nearly identical changes in hypoxia and normoxia at low pH. From these results, we conclude that: (1) hypoxia-induced respiratory alkalosis attenuated exhaustive exercise-induced metabolic acidosis, (2) plasma lactate concentration was determined by the relative exercise intensity, (3) the maximum plasma ammonia concentration under exhaustive exercise was reduced at hypoxia because of respiratory alkalosis.
Literatur
Zurück zum Zitat Bangsbo J, Juel C, Hellsten Y, Saltin B (1997) Dissociation between lactate and proton exchange in muscle during intense exercise in man. J Physiol (Lond) 504:489–499 Bangsbo J, Juel C, Hellsten Y, Saltin B (1997) Dissociation between lactate and proton exchange in muscle during intense exercise in man. J Physiol (Lond) 504:489–499
Zurück zum Zitat Broberg S, Sahlin K (1989) Adenine nucleotide degradation in human skeletal muscle during prolonged exercise. J Appl Physiol 67:116–122PubMed Broberg S, Sahlin K (1989) Adenine nucleotide degradation in human skeletal muscle during prolonged exercise. J Appl Physiol 67:116–122PubMed
Zurück zum Zitat Brownlee KA (1965) Statistical theory and methodology in science and engineering. Wiley, New York Brownlee KA (1965) Statistical theory and methodology in science and engineering. Wiley, New York
Zurück zum Zitat Casas H, Murtra B, Casas M, Ibáñez J, Ventura JL, Ricart A, Rodríguez F, Viscor G, Palacios L, Pagés T, Rama R (2001) Increased blood ammonia in hypoxia during exercise in humans. J Physiol Biochem 57:303–312 Casas H, Murtra B, Casas M, Ibáñez J, Ventura JL, Ricart A, Rodríguez F, Viscor G, Palacios L, Pagés T, Rama R (2001) Increased blood ammonia in hypoxia during exercise in humans. J Physiol Biochem 57:303–312
Zurück zum Zitat Davies SF, Iber C, Keene SA, McArthur CD, Path MJ (1986) Effect of respiratory alkalosis during exercise on blood lactate. J Appl Physiol 61:948–952PubMed Davies SF, Iber C, Keene SA, McArthur CD, Path MJ (1986) Effect of respiratory alkalosis during exercise on blood lactate. J Appl Physiol 61:948–952PubMed
Zurück zum Zitat Dudley GA, Terjung RL (1985) Influence of acidosis on AMP deaminase activity contracting fast-twitch muscle. Am J Physiol 248:C43–C50PubMed Dudley GA, Terjung RL (1985) Influence of acidosis on AMP deaminase activity contracting fast-twitch muscle. Am J Physiol 248:C43–C50PubMed
Zurück zum Zitat Forster HV, Dempsey JA, Thomson J, Vidruk E, DOPico GA (1972) Estimation of arterial PO2, PCO2, pH, and lactate from arterialized venous blood. J Appl Physiol 32:134–137PubMed Forster HV, Dempsey JA, Thomson J, Vidruk E, DOPico GA (1972) Estimation of arterial PO2, PCO2, pH, and lactate from arterialized venous blood. J Appl Physiol 32:134–137PubMed
Zurück zum Zitat Hellsten Y, Richter EA, Kiens B, Bangsbo J (1999) AMP deamination and purine exchange in human skeletal muscle during and after intense exercise. J Physiol (Lond) 520:909–920 Hellsten Y, Richter EA, Kiens B, Bangsbo J (1999) AMP deamination and purine exchange in human skeletal muscle during and after intense exercise. J Physiol (Lond) 520:909–920
Zurück zum Zitat Hollidge-Horvat MG, Parolin ML, Wong D, Jones NL, Heigenhauser GJF (2000) Effect of induced metabolic alkalosis on human skeletal muscle metabolism during exercise. Am J Physiol 278:E316–E329 Hollidge-Horvat MG, Parolin ML, Wong D, Jones NL, Heigenhauser GJF (2000) Effect of induced metabolic alkalosis on human skeletal muscle metabolism during exercise. Am J Physiol 278:E316–E329
Zurück zum Zitat Jensen-Urstad M, Hallback I, Sahlin K (1995) Effect of hypoxia muscle oxygenation and metabolism during arm exercise in humans. Clin Physiol 15:27–37PubMed Jensen-Urstad M, Hallback I, Sahlin K (1995) Effect of hypoxia muscle oxygenation and metabolism during arm exercise in humans. Clin Physiol 15:27–37PubMed
Zurück zum Zitat Juel C (1998) Muscle pH regulation: role of training. Acta Physiol Scand 162:359–366PubMed Juel C (1998) Muscle pH regulation: role of training. Acta Physiol Scand 162:359–366PubMed
Zurück zum Zitat Lowenstein JM, Tornheim K (1971) Ammonia production in muscle: the purine nucleotide cycle. Science 171:397–400PubMed Lowenstein JM, Tornheim K (1971) Ammonia production in muscle: the purine nucleotide cycle. Science 171:397–400PubMed
Zurück zum Zitat Maston LG, Tran ZV (1993) Effects of sodium bicarbonate ingestion on aerobic performance: a meta-analytic review. Int J Sports Nutr 3:3–28 Maston LG, Tran ZV (1993) Effects of sodium bicarbonate ingestion on aerobic performance: a meta-analytic review. Int J Sports Nutr 3:3–28
Zurück zum Zitat McLellan T, Jacobs I, Lewis W (1988) Acute altitude exposure and altered acid-base states.1. Effects on the exercise ventilation and blood lactate responses. Eur J Appl Physiol 57:435–444 McLellan T, Jacobs I, Lewis W (1988) Acute altitude exposure and altered acid-base states.1. Effects on the exercise ventilation and blood lactate responses. Eur J Appl Physiol 57:435–444
Zurück zum Zitat Medbo JL, Hanem S, Noddeland H, Jebens E (2000) Arteriovenous differences of blood acid-base status and plasma sodium caused by intense bicycling. Acta Physiol Scand 168:311–326PubMed Medbo JL, Hanem S, Noddeland H, Jebens E (2000) Arteriovenous differences of blood acid-base status and plasma sodium caused by intense bicycling. Acta Physiol Scand 168:311–326PubMed
Zurück zum Zitat Mutch BJC, Banister EW (1983) Ammonia metabolism in exercise and fatigue: a review. Med Sci Sports Exerc 15:41–50PubMed Mutch BJC, Banister EW (1983) Ammonia metabolism in exercise and fatigue: a review. Med Sci Sports Exerc 15:41–50PubMed
Zurück zum Zitat Sahlin K, Broberg S (1990) Adenine nucleotide depletion in human muscle during exercise: causality and significance of AMP deamination. Int J Sports Med 11:S62–S67PubMed Sahlin K, Broberg S (1990) Adenine nucleotide depletion in human muscle during exercise: causality and significance of AMP deamination. Int J Sports Med 11:S62–S67PubMed
Zurück zum Zitat Setlow B, Lowenstein JM (1967) Adenylate deaminase 2. Purification and some regulatory properties of the enzyme from calf brain. J Biol Chem 242:607–615PubMed Setlow B, Lowenstein JM (1967) Adenylate deaminase 2. Purification and some regulatory properties of the enzyme from calf brain. J Biol Chem 242:607–615PubMed
Zurück zum Zitat Sewell DA, Gleeson M, Blannin AK (1994) Hyperammonaemia in relation to high-intensity exercise duration in man. Eur J Appl Physiol 69:350–354 Sewell DA, Gleeson M, Blannin AK (1994) Hyperammonaemia in relation to high-intensity exercise duration in man. Eur J Appl Physiol 69:350–354
Zurück zum Zitat Spriet LL, Lindinger MI, Heigenhauser GJF, Jones NL (1986) Effects of alkalosis on skeletal muscle metabolism and performance during exercise. Am J Physiol 251:R833–R839PubMed Spriet LL, Lindinger MI, Heigenhauser GJF, Jones NL (1986) Effects of alkalosis on skeletal muscle metabolism and performance during exercise. Am J Physiol 251:R833–R839PubMed
Zurück zum Zitat Sugden PH, Newsholme EA (1975) The effects of ammonium, inorganic phosphate and potassium ions on the activity of phosphofructokinases from muscle and nervous tissues of vertebrates and invertebrates. Biochem J 150:113–122PubMed Sugden PH, Newsholme EA (1975) The effects of ammonium, inorganic phosphate and potassium ions on the activity of phosphofructokinases from muscle and nervous tissues of vertebrates and invertebrates. Biochem J 150:113–122PubMed
Zurück zum Zitat Taylor AD, Bronks R (1996) Effect of acute normobaric hypoxia on quadriceps integrated electromyogram and blood metabolites during incremental exercise to exhaustion. Eur J Appl Physiol 73:121–129 Taylor AD, Bronks R (1996) Effect of acute normobaric hypoxia on quadriceps integrated electromyogram and blood metabolites during incremental exercise to exhaustion. Eur J Appl Physiol 73:121–129
Zurück zum Zitat Yamauchi T, Matsui N (1996) Effect of blood pH on plasma ammonia and lactate concentrations during incremental exercise in men. Adv Exerc Sports Physiol 2:73–78 Yamauchi T, Matsui N (1996) Effect of blood pH on plasma ammonia and lactate concentrations during incremental exercise in men. Adv Exerc Sports Physiol 2:73–78
Zurück zum Zitat Young AJ (1990) Energy substrate utilization during exercise in extreme environments. Exerc Sport Sci Rev 18:65–117PubMed Young AJ (1990) Energy substrate utilization during exercise in extreme environments. Exerc Sport Sci Rev 18:65–117PubMed
Metadaten
Titel
Effect of low oxygen inhalation on changes in blood pH, lactate, and ammonia due to exercise
verfasst von
Takahide Kato
Yoshinori Matsumura
Atsuko Tsukanaka
Takeshi Harada
Mitsuo Kosaka
Nobuo Matsui
Publikationsdatum
01.03.2004
Verlag
Springer-Verlag
Erschienen in
European Journal of Applied Physiology / Ausgabe 2-3/2004
Print ISSN: 1439-6319
Elektronische ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-003-0975-3

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