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PMID: 10523424 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Metabolic and thermodynamic responses to dehydration-induced reductions in muscle blood flow in exercising humans.

The Journal of physiology ·Vol. 520 Pt 2 ·1999-10-15 ·Pages 577-89

González-Alonso J, Calbet JA, Nielsen B

Abstract

1. The present study examined whether reductions in muscle blood flow with exercise-induced dehydration would reduce substrate delivery and metabolite and heat removal to and from active skeletal muscles during prolonged exercise in the heat. A second aim was to examine the effects of dehydration on fuel utilisation across the exercising leg and identify factors related to fatigue. 2. Seven cyclists performed two cycle ergometer exercise trials in the heat (35 C; 61 +/- 2 % of maximal oxygen consumption rate, VO2,max), separated by 1 week. During the first trial (dehydration, DE), they cycled until volitional exhaustion (135 +/- 4 min, mean +/- s.e.m.), while developing progressive DE and hyperthermia (3.9 +/- 0.3 % body weight loss and 39.7 +/- 0.2 C oesophageal temperature, Toes). On the second trial (control), they cycled for the same period of time maintaining euhydration by ingesting fluids and stabilising Toes at 38.2 +/- 0.1 degrees C. 3. After 20 min of exercise in both trials, leg blood flow (LBF) and leg exchange of lactate, glucose, free fatty acids (FFA) and glycerol were similar. During the 20 to 135 +/- 4 min period of exercise, LBF declined significantly in DE but tended to increase in control. Therefore, after 120 and 135 +/- 4 min of DE, LBF was 0.6 +/- 0.2 and 1.0 +/- 0.3 l min-1 lower (P < 0.05), respectively, compared with control. 4. The lower LBF after 2 h in DE did not alter glucose or FFA delivery compared with control. However, DE resulted in lower (P < 0.05) net FFA uptake and higher (P < 0.05) muscle glycogen utilisation (45 %), muscle lactate accumulation (4.6-fold) and net lactate release (52 %), without altering net glycerol release or net glucose uptake. 5. In both trials, the mean convective heat transfer from the exercising legs to the body core ranged from 6.3 +/- 1.7 to 7.2 +/- 1.3 kJ min-1, thereby accounting for 35-40 % of the estimated rate of heat production ( approximately 18 kJ min-1). 6. At exhaustion in DE, blood lactate values were low whereas blood glucose and muscle glycogen levels were still high. Exhaustion coincided with high body temperature ( approximately 40 C). 7. In conclusion, the present results demonstrate that reductions in exercising muscle blood flow with dehydration do not impair either the delivery of glucose and FFA or the removal of lactate during moderately intense prolonged exercise in the heat. However, dehydration during exercise in the heat elevates carbohydrate oxidation and lactate production. A major finding is that more than one-half of the metabolic heat liberated in the contracting leg muscles is dissipated directly to the surrounding environment. The present results indicate that hyperthermia, rather than altered metabolism, is the main factor underlying the early fatigue with dehydration during prolonged exercise in the heat.

MeSH Terms
Adult Blood Glucose/analysis Body Temperature Carbon Dioxide/metabolism Dehydration/blood,physiopathology Epinephrine/blood Exercise Exercise Test Fatigue/physiopathology Fatty Acids, Nonesterified/blood Fever/physiopathology Glucagon/blood Glycerol/blood Glycogen/metabolism Humans Insulin/blood Lactic Acid/blood Male Muscle, Skeletal/blood supply,physiopathology Oxygen Consumption Phosphocreatine/metabolism Regional Blood Flow Thermodynamics
Chemicals
Blood Glucose Fatty Acids, Nonesterified Insulin Phosphocreatine Carbon Dioxide Lactic Acid Glycogen Glucagon Glycerol Epinephrine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
González-Alonso J
Human Physiology Department, August Krogh Institute, University of Copenhagen, Denmark. jga@cmrc.dk
Calbet J A
Nielsen B
References (37)
37 references, click to expand
  1. Calculation of whole blood CO2 content.
    J Appl Physiol (1985). 1988 Jul;65(1):473-7 PMID: 3136136
  2. Maximal perfusion of skeletal muscle in man.
    J Physiol. 1985 Sep;366:233-49 PMID: 4057091
  3. Exercise metabolism at different time intervals after a meal.
    J Appl Physiol (1985). 1991 Feb;70(2):882-8 PMID: 2022581
  4. Table of nonprotein respiratory quotient: an update.
    Can J Sport Sci. 1991 Mar;16(1):23-9 PMID: 1645211
  5. Influence of fatty acids on ammonia and amino acid flux from active human muscle.
    Am J Physiol. 1991 Aug;261(2 Pt 1):E168-76 PMID: 1872380
  6. Influence of active muscle mass on glucose homeostasis during exercise in humans.
    J Appl Physiol (1985). 1991 Aug;71(2):552-7 PMID: 1938728
  7. Fluid replacement and glucose infusion during exercise prevent cardiovascular drift.
    J Appl Physiol (1985). 1991 Sep;71(3):871-7 PMID: 1757323
  8. Human tolerance to heat strain during exercise: influence of hydration.
    J Appl Physiol (1985). 1992 Jul;73(1):368-75 PMID: 1506393
  9. Fluid ingestion during exercise increases skin blood flow independent of increases in blood volume.
    J Appl Physiol (1985). 1992 Sep;73(3):903-10 PMID: 1400054
  10. Influence of graded dehydration on hyperthermia and cardiovascular drift during exercise.
    J Appl Physiol (1985). 1992 Oct;73(4):1340-50 PMID: 1447078
  11. Human circulatory and thermoregulatory adaptations with heat acclimation and exercise in a hot, dry environment.
    J Physiol. 1993 Jan;460:467-85 PMID: 8487204
  12. Regulation of hepatic glucose production during exercise in humans: role of sympathoadrenergic activity.
    Am J Physiol. 1993 Aug;265(2 Pt 1):E275-83 PMID: 8368297
  13. Regulation of endogenous fat and carbohydrate metabolism in relation to exercise intensity and duration.
    Am J Physiol. 1993 Sep;265(3 Pt 1):E380-91 PMID: 8214047
  14. Skeletal muscle substrate utilization during submaximal exercise in man: effect of endurance training.
    J Physiol. 1993 Sep;469:459-78 PMID: 8271208
  15. Effects of hyperoxia on maximal leg O2 supply and utilization in men.
    J Appl Physiol (1985). 1993 Dec;75(6):2586-94 PMID: 8125878
  16. Muscle lactate metabolism in recovery from intense exhaustive exercise: impact of light exercise.
    J Appl Physiol (1985). 1994 Oct;77(4):1890-5 PMID: 7836214
  17. Myoglobin O2 desaturation during exercise. Evidence of limited O2 transport.
    J Clin Invest. 1995 Oct;96(4):1916-26 PMID: 7560083
  18. Dehydration reduces cardiac output and increases systemic and cutaneous vascular resistance during exercise.
    J Appl Physiol (1985). 1995 Nov;79(5):1487-96 PMID: 8594004
  19. Effect of fluid ingestion on muscle metabolism during prolonged exercise.
    J Appl Physiol (1985). 1996 Jan;80(1):363-6 PMID: 8847329
  20. Effect of heat stress on glucose kinetics during exercise.
    J Appl Physiol (1985). 1996 Oct;81(4):1594-7 PMID: 8904574
  21. Influence of elevated muscle temperature on metabolism during intense, dynamic exercise.
    Am J Physiol. 1996 Nov;271(5 Pt 2):R1251-5 PMID: 8945960
  22. Dehydration markedly impairs cardiovascular function in hyperthermic endurance athletes during exercise.
    J Appl Physiol (1985). 1997 Apr;82(4):1229-36 PMID: 9104860
  23. Fatty acid oxidation is directly regulated by carbohydrate metabolism during exercise.
    Am J Physiol. 1997 Aug;273(2 Pt 1):E268-75 PMID: 9277379
  24. Effect of epinephrine on muscle glycogenolysis during exercise in trained men.
    J Appl Physiol (1985). 1998 Feb;84(2):465-70 PMID: 9475854
  25. Energy supply and muscle fatigue in humans.
    Acta Physiol Scand. 1998 Mar;162(3):261-6 PMID: 9578371
  26. Hypohydration effects on skeletal muscle performance and metabolism: a 31P-MRS study.
    J Appl Physiol (1985). 1998 Jun;84(6):1889-94 PMID: 9609781
  27. Muscle blood flow is reduced with dehydration during prolonged exercise in humans.
    J Physiol. 1998 Dec 15;513 ( Pt 3):895-905 PMID: 9824726
  28. Evaluation of exercise and training on muscle lipid metabolism.
    Am J Physiol. 1999 Jan;276(1 Pt 1):E106-17 PMID: 9886956
  29. Influence of body temperature on the development of fatigue during prolonged exercise in the heat.
    J Appl Physiol (1985). 1999 Mar;86(3):1032-9 PMID: 10066720
  30. AEROBIC AND ANAEROBIC WORK CAPACITY AFTER DEHYDRATION.
    J Appl Physiol. 1964 Nov;19:1114-8 PMID: 14232305
  31. Temperature, skeletal muscle mitochondrial functions, and oxygen debt.
    Am J Physiol. 1971 Apr;220(4):1053-9 PMID: 4323901
  32. Substrate turnover during prolonged exercise in man. Splanchnic and leg metabolism of glucose, free fatty acids, and amino acids.
    J Clin Invest. 1974 Apr;53(4):1080-90 PMID: 4815076
  33. Substrate utilization during prolonged exercise preceded by ingestion of glucose.
    Am J Physiol. 1977 Sep;233(3):E188-94 PMID: 910907
  34. Effect of oxygen tension on cellular energetics.
    Am J Physiol. 1977 Nov;233(5):C135-40 PMID: 200145
  35. Thermal and circulatory responses to repeated bouts of prolonged running.
    Med Sci Sports. 1979 Summer;11(2):177-80 PMID: 491877
  36. Cerebrospinal fluid adrenaline and noradrenaline in depressed patients.
    Acta Psychiatr Scand. 1980 Feb;61(2):178-82 PMID: 7361588
  37. Muscle blood flow and muscle metabolism during exercise and heat stress.
    J Appl Physiol (1985). 1990 Sep;69(3):1040-6 PMID: 2246151
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1999-10-15
Pages
577-89
Language
English
Region
England
NLM ID
0266262
PMCID
PMC2269598
Subset
IM
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