Effects of carbohydrate feedings on plasma free tryptophan and branched-chain amino acids during prolonged cycling
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Marc T. Hamilton | Jeffrey A. Woods | M. Hamilton | J. Davis | J. Woods | S. Bailey | J. Mark Davis | W. Bartoli | Stephen P. Bailey | Floyd J. Galiano | William P. Bartoli | F. J. Galiano | M. Davis
[1] A. Patel,et al. Effects of Albumin, Amino Acids and Clofibrate on the Uptake of Tryptophan by the Rat Brain , 1980, Journal of neurochemistry.
[2] L A Stephenson,et al. Role of changes in insulin and glucagon in glucose homeostasis in exercise. , 1986, The Journal of clinical investigation.
[3] R. Wurtman,et al. Effect of various oral glucose doses on plasma neutral amino acid levels. , 1982, Metabolism: clinical and experimental.
[4] P. Hutson,et al. A simple apparatus for ultrafiltration of small volumes: application to the measurement of free and albumin-bound tryptophan in plasma. , 1977, Analytical biochemistry.
[5] T J Walters,et al. Determinants of endurance in well-trained cyclists. , 1988, Journal of applied physiology.
[6] E. Coyle,et al. Carbohydrate metabolism during intense exercise when hyperglycemic. , 1991, Journal of applied physiology.
[7] E. Newsholme,et al. Changes in plasma concentrations of aromatic and branched-chain amino acids during sustained exercise in man and their possible role in fatigue. , 1988, Acta physiologica Scandinavica.
[8] D. Laude,et al. Amphetamine and α-methyl-p-tyrosine affect the exercise-induced imbalance between the availability of tryptophan and synthesis of serotonin in the brain of the rat , 1987, Neuropharmacology.
[9] J. Oncley,et al. The specific binding of L-tryptophan to serum albumin. , 1958, The Journal of biological chemistry.
[10] R. Wurtman. Effects of dietary amino acids, carbohydrates, and choline on neurotransmitter synthesis. , 1988, The Mount Sinai journal of medicine, New York.
[11] J. Davis,et al. Effect of increased brain serotonergic activity on endurance performance in the rat. , 1992, Acta physiologica Scandinavica.
[12] S. Young. The clinical psychopharmacology of tryptophan , 1986 .
[13] E. Coyle,et al. Reversal of fatigue during prolonged exercise by carbohydrate infusion or ingestion. , 1987, Journal of applied physiology.
[14] F. Chaouloff,et al. Physical exercise and brain monoamines: a review. , 1989, Acta physiologica Scandinavica.
[15] D. Costill,et al. Calculation of percentage changes in volumes of blood, plasma, and red cells in dehydration. , 1974, Journal of applied physiology.
[16] P. Knott,et al. The Effect of Fatty Acids on the Binding of Tryptophan to Plasma Protein , 1973, Nature.
[17] B Bigland-Ritchie,et al. Motor drive and metabolic responses during repeated submaximal contractions in humans. , 1988, Journal of applied physiology.
[18] R. Edwards,et al. A Review of Metabolic and Physiological Factors in Fatigue , 1989, Exercise and sport sciences reviews.
[19] D. Perrett,et al. Effect of sustained exercise on plasma amino acid concentrations and on 5-hydroxytryptamine metabolism in six different brain regions in the rat. , 1989, Acta physiologica Scandinavica.
[20] H. Green. How important is endogenous muscle glycogen to fatigue in prolonged exercise? , 1991, Canadian journal of physiology and pharmacology.
[21] P. Hassmén,et al. Administration of branched-chain amino acids during sustained exercise — effects on performance and on plasma concentration of some amino acids , 2004, European Journal of Applied Physiology and Occupational Physiology.
[22] A. Hughson. Normal muscle strength and fatigability in patients with effort syndromes. , 1988, BMJ.
[23] H. Kuipers,et al. Carbohydrate supplementation, glycogen depletion, and amino acid metabolism during exercise. , 1991, The American journal of physiology.
[24] G. Kennett,et al. Amino Acid Analysis Demonstrates that Increased Plasma Free Tryptophan Causes the Increase of Brain Tryptophan During Exercise in the Rat , 1986, Journal of neurochemistry.
[25] E. Hultman,et al. Plasma and muscle amino acid and ammonia responses during prolonged exercise in humans. , 1991, Journal of applied physiology.
[26] M. Stokes,et al. Normal muscle strength and fatigability in patients with effort syndromes. , 1988 .
[27] H. Okabe,et al. A new colorimetric micro-determination of free fatty acids in serum. , 1973, Clinica chimica acta; international journal of clinical chemistry.
[28] E. Coyle,et al. Carbohydrate ingestion during prolonged exercise: effects on metabolism and performance. , 1991, Exercise and sport sciences reviews.
[29] E. Nikkila,et al. Specific determination of blood glucose with o-toluidine. , 1962, Clinica chimica acta; international journal of clinical chemistry.
[30] P Hassmén,et al. Effect of branched-chain amino acid supplementation on mental performance. , 1991, Acta physiologica Scandinavica.
[31] E. Coyle,et al. Effect of carbohydrate feedings during high-intensity exercise. , 1988, Journal of applied physiology.
[32] A. Patel,et al. Indolic Substances in Plasma, Cerebrospinal Fluid, and Frontal Cortex of Human Subjects Infused with Saline or Tryptophan , 1981, Journal of neurochemistry.
[33] F Benfenati,et al. Quantitative autoradiography of central neurotransmitter receptors: methodological and statistical aspects with special reference to computer-assisted image analysis. , 1986, Acta physiologica Scandinavica.
[34] J. Seifert,et al. Carbohydrate feeding and exercise: effect of beverage carbohydrate content , 2006, European Journal of Applied Physiology and Occupational Physiology.
[35] G Sjøgaard,et al. Water and electrolyte fluxes during exercise and their relation to muscle fatigue. , 1986, Acta physiologica Scandinavica. Supplementum.