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Published in: European Journal of Applied Physiology 5/2012

01-05-2012 | Original Article

Effects of graded exercise-induced dehydration and rehydration on circulatory markers of oxidative stress across the resting and exercising human leg

Authors: Orlando Laitano, Kameljit Kaur Kalsi, James Pearson, Makra Lotlikar, Alvaro Reischak-Oliveira, José González-Alonso

Published in: European Journal of Applied Physiology | Issue 5/2012

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Abstract

Exercise in the heat enhances oxidative stress markers in the human circulation, but the contribution of active skeletal muscle and the influence of hydration status remain unknown. To address this question, we measured leg exchange of glutathione (GSH), glutathione disulfide (GSSG), superoxide dismutase activity (SOD) and isoprostanes in seven males at rest and during submaximal one-legged knee extensor exercise in the following four conditions: (1) control euhydration (0% reduction in body mass), (2) mild-dehydration (2%), (3) moderate-dehydration (3.5%), (4) rehydration (0%). In all resting and control exercise conditions, a net GSH uptake was observed across the leg. In contrast, a significant leg release of GSH into the circulation (−354 ± 221 μmol/min, P < 0.05) was observed during exercise with moderate-dehydration, which was still present following full rehydration (−206 ± 122 μmol/min, P < 0.05). During exercise, mild and moderate-dehydration decreased both femoral venous erythrocyte SOD activity (195 ± 6 vs. 180 ± 5 U/L, P < 0.05) and plasma isoprostanes (30 ± 1.1 vs. 25.9 ± 1.3 pg/L, P < 0.05), but during rehydration these were not different from control. In conclusion, these findings suggest that active skeletal muscles release GSH into the circulation under moderate dehydration and subsequent rehydration, possibly to enhance the antioxidant defense.
Literature
go back to reference Bailey DM, Young IS, McEneny J, Lawrenson L, Kim J, Barden J, Richardson RS (2004) Regulation of free radical outflow from an isolated muscle bed in exercising humans. Am J Physiol Heart Circ Physiol 287(4):H1689–H1699PubMedCrossRef Bailey DM, Young IS, McEneny J, Lawrenson L, Kim J, Barden J, Richardson RS (2004) Regulation of free radical outflow from an isolated muscle bed in exercising humans. Am J Physiol Heart Circ Physiol 287(4):H1689–H1699PubMedCrossRef
go back to reference Burk RF, Hill KE (1995). Reduced glutathione release into rat plasma by extrahepatic tissues. Am J Physiol 269(3 Pt 1):G396–G399 Burk RF, Hill KE (1995). Reduced glutathione release into rat plasma by extrahepatic tissues. Am J Physiol 269(3 Pt 1):G396–G399
go back to reference Cazzola R, Russo-Volpe S, Cervato G, Cestaro B (2003) Biochemical assessments of oxidative stress, erythrocyte membrane fluidity and antioxidant status in professional soccer players and sedentary controls. Eur J Clin Invest 33:924–930PubMedCrossRef Cazzola R, Russo-Volpe S, Cervato G, Cestaro B (2003) Biochemical assessments of oxidative stress, erythrocyte membrane fluidity and antioxidant status in professional soccer players and sedentary controls. Eur J Clin Invest 33:924–930PubMedCrossRef
go back to reference Child RB, Wilkinson DM, Fallowfield JL, Donnelly AE (1998) Elevated serum antioxidant capacity and plasma malondialdehyde concentration in response to a simulated half-marathon run. Med Sci Sports Exerc 18:89–93 Child RB, Wilkinson DM, Fallowfield JL, Donnelly AE (1998) Elevated serum antioxidant capacity and plasma malondialdehyde concentration in response to a simulated half-marathon run. Med Sci Sports Exerc 18:89–93
go back to reference Cotgreave IA, Goldschmidt L, Tonkonogi M, Svensson M (2002) Differentiation-specific alterations to glutathione synthesis in and hormonally stimulated release from human skeletal muscle cells. FASEB J 16(3):435–437PubMed Cotgreave IA, Goldschmidt L, Tonkonogi M, Svensson M (2002) Differentiation-specific alterations to glutathione synthesis in and hormonally stimulated release from human skeletal muscle cells. FASEB J 16(3):435–437PubMed
go back to reference Dill DB, Costill DL (1974) Calculation of percentage changes in plasma volume of blood, plasma, and red cells in dehydration. J Appl Physiol 37(2):247–248PubMed Dill DB, Costill DL (1974) Calculation of percentage changes in plasma volume of blood, plasma, and red cells in dehydration. J Appl Physiol 37(2):247–248PubMed
go back to reference Dreissigacker U, Wendt M, Wittke T, Tsikas D, Maassen N (2010) Positive correlation between plasma nitrite and performance during high-intensive exercise but not oxidative stress in healthy men. Nitric Oxide 23:128–135PubMedCrossRef Dreissigacker U, Wendt M, Wittke T, Tsikas D, Maassen N (2010) Positive correlation between plasma nitrite and performance during high-intensive exercise but not oxidative stress in healthy men. Nitric Oxide 23:128–135PubMedCrossRef
go back to reference Fernández JM, Da Silva-Grigoletto ME, Gómez-Puerto JR, Viana-Montaner BH, Tasset-Cuevas I, Túnez I, López-Miranda J, Pérez-Jiménez F (2009) A dose of fructose induces oxidative stress during endurance and strength exercise. J Sports Sci 27(12):1323–1334PubMedCrossRef Fernández JM, Da Silva-Grigoletto ME, Gómez-Puerto JR, Viana-Montaner BH, Tasset-Cuevas I, Túnez I, López-Miranda J, Pérez-Jiménez F (2009) A dose of fructose induces oxidative stress during endurance and strength exercise. J Sports Sci 27(12):1323–1334PubMedCrossRef
go back to reference Gohil K, Viguie C, Stanley WC, Brooks GA, Packer L (1988) Blood glutathione oxidation during human exercise. J Appl Physiol 64(1):115–119PubMed Gohil K, Viguie C, Stanley WC, Brooks GA, Packer L (1988) Blood glutathione oxidation during human exercise. J Appl Physiol 64(1):115–119PubMed
go back to reference González-Alonso J, Crandall CG, Johnson JM (2008) The cardiovascular challenge of exercising in the heat. J Physiol 586(1):45–53PubMedCrossRef González-Alonso J, Crandall CG, Johnson JM (2008) The cardiovascular challenge of exercising in the heat. J Physiol 586(1):45–53PubMedCrossRef
go back to reference Halliwell B, Gutteridge J (2006) Free radicals in biology and medicine, 4th edn. Oxford Bioscience, Boston Halliwell B, Gutteridge J (2006) Free radicals in biology and medicine, 4th edn. Oxford Bioscience, Boston
go back to reference Hellsten Y, Svensson M, Sjödin B, Smith S, Christensen A, Richter EA, Bangsbo J (2001) Allantoin formation and urate and glutathione exchange in human muscle during submaximal exercise. Free Radic Biol Med 31(11):1313–1322PubMedCrossRef Hellsten Y, Svensson M, Sjödin B, Smith S, Christensen A, Richter EA, Bangsbo J (2001) Allantoin formation and urate and glutathione exchange in human muscle during submaximal exercise. Free Radic Biol Med 31(11):1313–1322PubMedCrossRef
go back to reference Inayama T, Kashiba M, Oka J, Higuchi M, Umegaki K, Saito M, Yamamoto Y, Matsuda M (2002) Physical exercise induces oxidation of plasma protein thiols to cysteine mixed disulfides in humans. J Health Sci 48(5):399–403CrossRef Inayama T, Kashiba M, Oka J, Higuchi M, Umegaki K, Saito M, Yamamoto Y, Matsuda M (2002) Physical exercise induces oxidation of plasma protein thiols to cysteine mixed disulfides in humans. J Health Sci 48(5):399–403CrossRef
go back to reference Ji LL (1993) Antioxidant enzyme response to exercise and aging. Med Sci Sports Exerc 25(2):225–231PubMed Ji LL (1993) Antioxidant enzyme response to exercise and aging. Med Sci Sports Exerc 25(2):225–231PubMed
go back to reference Ji LL (1995) Exercise and oxidative stress: role of the cellular antioxidant systems. Exerc Sport Sci Rev 23:135–166PubMedCrossRef Ji LL (1995) Exercise and oxidative stress: role of the cellular antioxidant systems. Exerc Sport Sci Rev 23:135–166PubMedCrossRef
go back to reference Laitano O, Kalsi KK, Pook M, Oliveira AR, González-Alonso J (2010) Separate and combined effects of heat stress and exercise on circulatory markers of oxidative stress in euhydrated humans. Eur J Appl Physiol 110(5):953–960PubMedCrossRef Laitano O, Kalsi KK, Pook M, Oliveira AR, González-Alonso J (2010) Separate and combined effects of heat stress and exercise on circulatory markers of oxidative stress in euhydrated humans. Eur J Appl Physiol 110(5):953–960PubMedCrossRef
go back to reference Leeuwenburgh C, Ji LL (1995) Glutathione depletion in rested and exercised mice: biochemical consequence and adaptation. Arch Biochem Biophys 316(2):941–949PubMedCrossRef Leeuwenburgh C, Ji LL (1995) Glutathione depletion in rested and exercised mice: biochemical consequence and adaptation. Arch Biochem Biophys 316(2):941–949PubMedCrossRef
go back to reference Leeuwenburgh C, Ji LL (1996) Alteration of glutathione and antioxidant status with exercise in unfed and refed rats. J Nutr 126(7):1833–1843PubMed Leeuwenburgh C, Ji LL (1996) Alteration of glutathione and antioxidant status with exercise in unfed and refed rats. J Nutr 126(7):1833–1843PubMed
go back to reference Marcuello A, González-Alonso J, Calbet JA, Damsgaard R, López-Pérez MJ, Díez-Sánchez C (2005) Skeletal muscle mitochondrial DNA content in exercising humans. J Appl Physiol 99(4):1372–1377PubMedCrossRef Marcuello A, González-Alonso J, Calbet JA, Damsgaard R, López-Pérez MJ, Díez-Sánchez C (2005) Skeletal muscle mitochondrial DNA content in exercising humans. J Appl Physiol 99(4):1372–1377PubMedCrossRef
go back to reference McAnulty SR, McAnulty L, Pascoe DD, Gropper SS, Keith RE, Morrow JD, Gladden LB (2005) Hyperthermia increases exercise-induced oxidative stress. Int J Sports Med 26(3):188–192PubMedCrossRef McAnulty SR, McAnulty L, Pascoe DD, Gropper SS, Keith RE, Morrow JD, Gladden LB (2005) Hyperthermia increases exercise-induced oxidative stress. Int J Sports Med 26(3):188–192PubMedCrossRef
go back to reference Meister A (1988) Glutathione metabolism and its selective modification. J Biol Chem 263:17205–17208PubMed Meister A (1988) Glutathione metabolism and its selective modification. J Biol Chem 263:17205–17208PubMed
go back to reference Ng CF, Schafer FQ, Buettner GR, Rodgers VG (2007) The rate of cellular hydrogen peroxide removal shows dependency on GSH: mathematical insight into in vivo H2O2 and GPx concentrations. Free Radic Res 41(11):1201–1211PubMedCrossRef Ng CF, Schafer FQ, Buettner GR, Rodgers VG (2007) The rate of cellular hydrogen peroxide removal shows dependency on GSH: mathematical insight into in vivo H2O2 and GPx concentrations. Free Radic Res 41(11):1201–1211PubMedCrossRef
go back to reference Nieman DC, Henson DA, McAnulty SR, McAnulty L, Swick NS, Utter AC, Vinci DM, Opiela SJ, Morrow JD (2002) Influence of vitamin C supplementation on oxidative and immune changes after an ultramarathon. J Appl Physiol 92(5):1970–1977PubMed Nieman DC, Henson DA, McAnulty SR, McAnulty L, Swick NS, Utter AC, Vinci DM, Opiela SJ, Morrow JD (2002) Influence of vitamin C supplementation on oxidative and immune changes after an ultramarathon. J Appl Physiol 92(5):1970–1977PubMed
go back to reference Nikolaidis MG, Kyparos A, Vrabas IS (2011) F(2)-isoprostane formation, measurement and interpretation: the role of exercise. Prog Lipid Res 50(1):89–103PubMedCrossRef Nikolaidis MG, Kyparos A, Vrabas IS (2011) F(2)-isoprostane formation, measurement and interpretation: the role of exercise. Prog Lipid Res 50(1):89–103PubMedCrossRef
go back to reference Ohtsuka Y, Yabunaka N, Fujisawa H, Watanabe I, Agishi Y (1994) Effect of thermal stress on glutathione metabolism in human erythrocytes. Eur J Appl Physiol Occup Physiol 68(1):87–91PubMedCrossRef Ohtsuka Y, Yabunaka N, Fujisawa H, Watanabe I, Agishi Y (1994) Effect of thermal stress on glutathione metabolism in human erythrocytes. Eur J Appl Physiol Occup Physiol 68(1):87–91PubMedCrossRef
go back to reference Paik IY, Jeong MH, Jin HE, Kim YI, Suh AR, Cho SY, Roh HT, Jin CH, Suh SH (2009) Fluid replacement following dehydration reduces oxidative stress during recovery. Biochem Biophys Res Commun 383(1):103–107PubMedCrossRef Paik IY, Jeong MH, Jin HE, Kim YI, Suh AR, Cho SY, Roh HT, Jin CH, Suh SH (2009) Fluid replacement following dehydration reduces oxidative stress during recovery. Biochem Biophys Res Commun 383(1):103–107PubMedCrossRef
go back to reference Rådegran G (1997) Ultrasound Doppler estimates of femoral artery blood flow during dynamic knee extensor exercise in humans. J Appl Physiol 83(4):1383–1388PubMed Rådegran G (1997) Ultrasound Doppler estimates of femoral artery blood flow during dynamic knee extensor exercise in humans. J Appl Physiol 83(4):1383–1388PubMed
go back to reference Sahlin K, Ekberg K, Cizinsky S (1991) Changes in plasma hypoxanthine and free radical markers during exercise in man. Acta Physiol Scand 142:274–281CrossRef Sahlin K, Ekberg K, Cizinsky S (1991) Changes in plasma hypoxanthine and free radical markers during exercise in man. Acta Physiol Scand 142:274–281CrossRef
go back to reference Sawka MN, Coyle EF (1999) Influence of body water and blood volume on thermoregulation and exercise performance in the heat. Exerc Sport Sci Rev 27:167–218PubMed Sawka MN, Coyle EF (1999) Influence of body water and blood volume on thermoregulation and exercise performance in the heat. Exerc Sport Sci Rev 27:167–218PubMed
go back to reference Schneider CD, Barp J, Ribeiro JL, Belló-Klein A, Oliveira AR (2005) Oxidative stress after three different intensities of running. Can J Appl Physiol 30(6):723–734PubMedCrossRef Schneider CD, Barp J, Ribeiro JL, Belló-Klein A, Oliveira AR (2005) Oxidative stress after three different intensities of running. Can J Appl Physiol 30(6):723–734PubMedCrossRef
go back to reference Sen CK, Marin E, Kretzschmar M, Hänninen O (1992) Skeletal muscle and liver glutathione homeostasis in response to training, exercise, and immobilization. J Appl Physiol 73(4):1265–1272PubMed Sen CK, Marin E, Kretzschmar M, Hänninen O (1992) Skeletal muscle and liver glutathione homeostasis in response to training, exercise, and immobilization. J Appl Physiol 73(4):1265–1272PubMed
go back to reference Smith JA, Kolbuch-Braddon M, Gillam I, Telford RD, Weidermann MJ (1995) Changes in the susceptibility of red blood cells to oxidative and osmotic stress following submaximal exercise. Eur J Appl Physiol 70:427–436CrossRef Smith JA, Kolbuch-Braddon M, Gillam I, Telford RD, Weidermann MJ (1995) Changes in the susceptibility of red blood cells to oxidative and osmotic stress following submaximal exercise. Eur J Appl Physiol 70:427–436CrossRef
go back to reference Veskoukis AS, Nikolaidis MG, Kyparos A, Kouretas D (2009) Blood reflects tissue oxidative stress depending on biomarker and tissue studied. Free Radic Biol Med 47(10):1371–1374PubMedCrossRef Veskoukis AS, Nikolaidis MG, Kyparos A, Kouretas D (2009) Blood reflects tissue oxidative stress depending on biomarker and tissue studied. Free Radic Biol Med 47(10):1371–1374PubMedCrossRef
Metadata
Title
Effects of graded exercise-induced dehydration and rehydration on circulatory markers of oxidative stress across the resting and exercising human leg
Authors
Orlando Laitano
Kameljit Kaur Kalsi
James Pearson
Makra Lotlikar
Alvaro Reischak-Oliveira
José González-Alonso
Publication date
01-05-2012
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 5/2012
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-011-2170-2

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