Skip to main content
Erschienen in: Sports Medicine 2/2003

01.02.2003 | Review Article

Determinants of Post-Exercise Glycogen Synthesis During Short-Term Recovery

Erschienen in: Sports Medicine | Ausgabe 2/2003

Einloggen, um Zugang zu erhalten

Abstract

The pattern of muscle glycogen synthesis following glycogen-depleting exercise occurs in two phases. Initially, there is a period of rapid synthesis of muscle glycogen that does not require the presence of insulin and lasts about 30–60 minutes. This rapid phase of muscle glycogen synthesis is characterised by an exercise-induced translocation of glucose transporter carrier protein-4 to the cell surface, leading to an increased permeability of the muscle membrane to glucose. Following this rapid phase of glycogen synthesis, muscle glycogen synthesis occurs at a much slower rate and this phase can last for several hours. Both muscle contraction and insulin have been shown to increase the activity of glycogen synthase, the rate-limiting enzyme in glycogen synthesis. Furthermore, it has been shown that muscle glycogen concentration is a potent regulator of glycogen synthase. Low muscle glycogen concentrations following exercise are associated with an increased rate of glucose transport and an increased capacity to convert glucose into glycogen.
The highest muscle glycogen synthesis rates have been reported when large amounts of carbohydrate (1.0–1.85 g/kg/h) are consumed immediately post-exercise and at 15.60 minute intervals thereafter, for up to 5 hours post-exercise. When carbohydrate ingestion is delayed by several hours, this may lead to ∼50% lower rates of muscle glycogen synthesis. The addition of certain amino acids and/ or proteins to a carbohydrate supplement can increase muscle glycogen synthesis rates, most probably because of an enhanced insulin response. However, when carbohydrate intake is high (≥1.2 g/kg/h) and provided at regular intervals, a further increase in insulin concentrations by additional supplementation of protein and/or amino acids does not further increase the rate of muscle glycogen synthesis. Thus, when carbohydrate intake is insufficient (<1.2 g/kg/h), the addition of certain amino acids and/or proteins may be beneficial for muscle glycogen synthesis. Furthermore, ingestion of insulinotropic protein and/or amino acid mixtures might stimulate post-exercise net muscle protein anabolism. Suggestions have been made that carbohydrate availability is the main limiting factor for glycogen synthesis. A large part of the ingested glucose that enters the bloodstream appears to be extracted by tissues other than the exercise muscle (i.e. liver, other muscle groups or fat tissue) and may therefore limit the amount of glucose available to maximise muscle glycogen synthesis rates. Furthermore, intestinal glucose absorption may also be a rate-limiting factor for muscle glycogen synthesis when large quantities (>1 g/min) of glucose are ingested following exercise.
Literatur
1.
Zurück zum Zitat Romijn JA, Coyle EF, Sidossis LS, et al. Regulation of endogenous fat in carbohydrate metabolism in relation to exercise intensity and duration. Am J Physiol 1993; 265: E380–91 Romijn JA, Coyle EF, Sidossis LS, et al. Regulation of endogenous fat in carbohydrate metabolism in relation to exercise intensity and duration. Am J Physiol 1993; 265: E380–91
2.
Zurück zum Zitat Bergström J, Hermansen L, Hultman E, et al. Diet, muscle glycogen and physical performance. Acta Physiol Scand 1967; 71: 140–50PubMedCrossRef Bergström J, Hermansen L, Hultman E, et al. Diet, muscle glycogen and physical performance. Acta Physiol Scand 1967; 71: 140–50PubMedCrossRef
3.
Zurück zum Zitat Hultman E. Physiological role of muscle glycogen in man, with special reference to exercise. Cite Res 1967; 20–21 (1): 199–1114 Hultman E. Physiological role of muscle glycogen in man, with special reference to exercise. Cite Res 1967; 20–21 (1): 199–1114
4.
Zurück zum Zitat Burke L, Collier GR, Beasley SK, et al. Effect of coingestion of fat and protein with carbohydrate feedings on muscle glycogen storage. J Appl Physiol 1995; 78: 2187–92PubMedCrossRef Burke L, Collier GR, Beasley SK, et al. Effect of coingestion of fat and protein with carbohydrate feedings on muscle glycogen storage. J Appl Physiol 1995; 78: 2187–92PubMedCrossRef
5.
Zurück zum Zitat Coggan AR, Mendenhall LA. Effect of diet on substrate metabolism during exercise. In: Lamb DR, Gisolfi CV, editors. Perspectives in exercise science and sports medicine: energy metabolism in exercise and sport. Traverse City (MI): Cooper Publishing group, 1992: 435–71 Coggan AR, Mendenhall LA. Effect of diet on substrate metabolism during exercise. In: Lamb DR, Gisolfi CV, editors. Perspectives in exercise science and sports medicine: energy metabolism in exercise and sport. Traverse City (MI): Cooper Publishing group, 1992: 435–71
6.
Zurück zum Zitat Costill DL. Carbohydrates for exercise: dietary demands for optimal performance. Int J Sports Med 1988; 9: 1–18PubMedCrossRef Costill DL. Carbohydrates for exercise: dietary demands for optimal performance. Int J Sports Med 1988; 9: 1–18PubMedCrossRef
7.
8.
Zurück zum Zitat Kiens B, Richter EA. Utilization of skeletal muscle triacylglycerol during postexercise recovery in humans. Am J Physiol 1998; 275: E332–7 Kiens B, Richter EA. Utilization of skeletal muscle triacylglycerol during postexercise recovery in humans. Am J Physiol 1998; 275: E332–7
9.
Zurück zum Zitat Casey A, Short AIL, Hultman E, et al. Glycogen resynthesis in human muscle fibre types following exercise-induced glycogen depletion. J Physiol 1995; 483 (1): 265–71PubMed Casey A, Short AIL, Hultman E, et al. Glycogen resynthesis in human muscle fibre types following exercise-induced glycogen depletion. J Physiol 1995; 483 (1): 265–71PubMed
10.
Zurück zum Zitat Keizer H, Kuipers H, van Kranenburg G. Influence of liquid and solid meals on muscle glycogen resynthesis, plasma fuel hormone response, and maximal physical working capacity. Int J Sports Med 1987; 8: 99–104PubMedCrossRef Keizer H, Kuipers H, van Kranenburg G. Influence of liquid and solid meals on muscle glycogen resynthesis, plasma fuel hormone response, and maximal physical working capacity. Int J Sports Med 1987; 8: 99–104PubMedCrossRef
11.
Zurück zum Zitat Kochan RG, Lamb DR, Lutz SA, et al. Glycogen synthase activation in human skeletal muscle: effects of diet and exercise. Am J Physiol 1979; 236 (6): E660–6 Kochan RG, Lamb DR, Lutz SA, et al. Glycogen synthase activation in human skeletal muscle: effects of diet and exercise. Am J Physiol 1979; 236 (6): E660–6
12.
Zurück zum Zitat Bergström J, Hultman E. Muscle glycogen synthesis after exercise: an enhancing factor localized to the muscle cells in man. Nature 1966; 1210: 309–10CrossRef Bergström J, Hultman E. Muscle glycogen synthesis after exercise: an enhancing factor localized to the muscle cells in man. Nature 1966; 1210: 309–10CrossRef
13.
Zurück zum Zitat Madsen K, Pedersen PK, Rose P, et al. Carbohydrate supercompensation and muscle glycogen utilization during exhaustive running in highly trained athletes. Fur J Appl Physiol 1990; 61: 467–72CrossRef Madsen K, Pedersen PK, Rose P, et al. Carbohydrate supercompensation and muscle glycogen utilization during exhaustive running in highly trained athletes. Fur J Appl Physiol 1990; 61: 467–72CrossRef
14.
Zurück zum Zitat Sherman WM, Costill DL, Fink WJ, et al. Effect of exercisediet manipulation on muscle glycogen and its subsequent utilisation during performance. Int J Sports Med 1981; 2: 114–8PubMedCrossRef Sherman WM, Costill DL, Fink WJ, et al. Effect of exercisediet manipulation on muscle glycogen and its subsequent utilisation during performance. Int J Sports Med 1981; 2: 114–8PubMedCrossRef
15.
Zurück zum Zitat Sherman WM, Doyle MA, Lamb DR, et al. Dietary carbohydrate, muscle glycogen and exercise performance during 7 d of training. Am J Clin Nutr 1993; 57: 27–31PubMed Sherman WM, Doyle MA, Lamb DR, et al. Dietary carbohydrate, muscle glycogen and exercise performance during 7 d of training. Am J Clin Nutr 1993; 57: 27–31PubMed
16.
Zurück zum Zitat Tarnopolsky MA, Atkinson SA, Phillips SM, et al. Carbohydrate loading and metabolism during exercise in men and women. J Appl Physiol 1995; 75: 2134–41 Tarnopolsky MA, Atkinson SA, Phillips SM, et al. Carbohydrate loading and metabolism during exercise in men and women. J Appl Physiol 1995; 75: 2134–41
17.
Zurück zum Zitat van Hall G, Shirreffs SM, Calbet JA. Muscle glycogen resynthesis during recovery from cycle exercise: no effect of additional protein ingestion. J Appl Physiol 2000; 88 (5): 1631–6PubMed van Hall G, Shirreffs SM, Calbet JA. Muscle glycogen resynthesis during recovery from cycle exercise: no effect of additional protein ingestion. J Appl Physiol 2000; 88 (5): 1631–6PubMed
18.
Zurück zum Zitat Goodyear LJ, Kahn BB. Exercise, glucose transport, and insulin sensitivity. Annu Rev Med 1998; 49: 235–61PubMedCrossRef Goodyear LJ, Kahn BB. Exercise, glucose transport, and insulin sensitivity. Annu Rev Med 1998; 49: 235–61PubMedCrossRef
19.
Zurück zum Zitat Mueckler M. Facilitative glucose transporters. Fur J Appl Physiol 1994; 219: 713–25 Mueckler M. Facilitative glucose transporters. Fur J Appl Physiol 1994; 219: 713–25
20.
Zurück zum Zitat Gaster M, Nandberg A, Beck-Nielsen H, et al. Glucose transporter expression in human skeletal muscle fibers. J Appl Physiol 2000; 279: E529–38 Gaster M, Nandberg A, Beck-Nielsen H, et al. Glucose transporter expression in human skeletal muscle fibers. J Appl Physiol 2000; 279: E529–38
21.
Zurück zum Zitat Lund S, Holman GD, Schmitz O, et al. Contraction stimulates translocation of glucose transporter GLUT-4 in skeletal muscle through a mechanism distinct from that of insulin. Proc Natl Acad Sci U S A 1995; 92: 5817–21PubMedCrossRef Lund S, Holman GD, Schmitz O, et al. Contraction stimulates translocation of glucose transporter GLUT-4 in skeletal muscle through a mechanism distinct from that of insulin. Proc Natl Acad Sci U S A 1995; 92: 5817–21PubMedCrossRef
22.
Zurück zum Zitat Thorell A, Hirshman MF, Nygren J, et al. Exercise and insulin cause GLUT-4 translocation in human skeletal muscle. Am J Physiol 1999; 277 (4 Pt 1): E733–41 Thorell A, Hirshman MF, Nygren J, et al. Exercise and insulin cause GLUT-4 translocation in human skeletal muscle. Am J Physiol 1999; 277 (4 Pt 1): E733–41
23.
Zurück zum Zitat MacLean PS, Zheng D, Dohm GL. Muscle glucose transporter (GLUT 4) gene expression during exercise. Exert Sport Sci Rev 2000; 28 (4): 148–52 MacLean PS, Zheng D, Dohm GL. Muscle glucose transporter (GLUT 4) gene expression during exercise. Exert Sport Sci Rev 2000; 28 (4): 148–52
24.
Zurück zum Zitat Ivy JL, Kuo CH. Regulation of GLUT4 protein and glycogen synthase during muscle glycogen synthesis after exercise. Acta Physiol Scand 1998; 162: 295–304PubMedCrossRef Ivy JL, Kuo CH. Regulation of GLUT4 protein and glycogen synthase during muscle glycogen synthesis after exercise. Acta Physiol Scand 1998; 162: 295–304PubMedCrossRef
25.
Zurück zum Zitat Richter EA, Derave W, Wojtaszewski JFP. Glucose, exercise and insulin: emerging concepts. J Physiol 2001; 535 (2): 313–22PubMedCrossRef Richter EA, Derave W, Wojtaszewski JFP. Glucose, exercise and insulin: emerging concepts. J Physiol 2001; 535 (2): 313–22PubMedCrossRef
26.
Zurück zum Zitat Maughan R, Gleeson M, Greenhaff PL. Biochemistry of exercise and training. New York: Oxford University Press, 1997 Maughan R, Gleeson M, Greenhaff PL. Biochemistry of exercise and training. New York: Oxford University Press, 1997
27.
Zurück zum Zitat Danforth WJ. Glycogen synthase activity in skeletal muscle. J Biol Chem 1965; 240: 588–93PubMed Danforth WJ. Glycogen synthase activity in skeletal muscle. J Biol Chem 1965; 240: 588–93PubMed
28.
Zurück zum Zitat Alonso MD, Lomako J, Lomako WM, et al. A new look at the biogenesis of glycogen. FASEB 1995; 9 (12): 1126–37 Alonso MD, Lomako J, Lomako WM, et al. A new look at the biogenesis of glycogen. FASEB 1995; 9 (12): 1126–37
29.
Zurück zum Zitat Lomako J, Lomako WM, Whelan WJ. The nature of the primer for glycogen synthesis in muscle. FEBS Lett 1990; 268 (1): 8–12PubMedCrossRef Lomako J, Lomako WM, Whelan WJ. The nature of the primer for glycogen synthesis in muscle. FEBS Lett 1990; 268 (1): 8–12PubMedCrossRef
30.
Zurück zum Zitat Smythe C, Cohen P. The discovery of glycogenin and the priming mechanism for glycogen biogenesis. Fur J Biochem 1991; 200 (3): 625–31 Smythe C, Cohen P. The discovery of glycogenin and the priming mechanism for glycogen biogenesis. Fur J Biochem 1991; 200 (3): 625–31
31.
Zurück zum Zitat Smythe C, Watt P, Cohen P. Further studies on the role of glycogenin in glycogen biosynthesis. Fur J Biochem 1990; 189 (1): 199–204 Smythe C, Watt P, Cohen P. Further studies on the role of glycogenin in glycogen biosynthesis. Fur J Biochem 1990; 189 (1): 199–204
32.
Zurück zum Zitat Adamo KB, Tarnopolsky MA, Graham TE. Dietary carbohydrate and postexercise synthesis of proglycogen and macroglycogen in human skeletal muscle. Am J Physiol 1998; 275: E229–34 Adamo KB, Tarnopolsky MA, Graham TE. Dietary carbohydrate and postexercise synthesis of proglycogen and macroglycogen in human skeletal muscle. Am J Physiol 1998; 275: E229–34
33.
Zurück zum Zitat Adamo KB, Graham TE. Comparison of traditional measurements with macroglycogen and proglycogen analysis of muscle glycogen. J Appl Physiol 1998; 84 (3): 908–13PubMed Adamo KB, Graham TE. Comparison of traditional measurements with macroglycogen and proglycogen analysis of muscle glycogen. J Appl Physiol 1998; 84 (3): 908–13PubMed
34.
Zurück zum Zitat Asp S, Daugaard JR, Rohde T, et al. Muscle glycogen accumulation after a marathon: roles of fiber type and pro- and macroglycogen. J Appl Physiol 1999; 86 (2): 474–8PubMed Asp S, Daugaard JR, Rohde T, et al. Muscle glycogen accumulation after a marathon: roles of fiber type and pro- and macroglycogen. J Appl Physiol 1999; 86 (2): 474–8PubMed
35.
Zurück zum Zitat Blom PCS, Hostmark AT, Vaage O, et al. Effect of different post-exercise sugar diets on the rate of glycogen synthesis. Med Sci Sports Exerc 1987; 19 (5): 491–6PubMed Blom PCS, Hostmark AT, Vaage O, et al. Effect of different post-exercise sugar diets on the rate of glycogen synthesis. Med Sci Sports Exerc 1987; 19 (5): 491–6PubMed
36.
Zurück zum Zitat Garetto LP, Richter EA, Goodman MN, et al. Enhanced muscle glucose metabolism after exercise in the rat: the two phases. Am J Physiol 1984; 246 (6 Pt 1): E471–5 Garetto LP, Richter EA, Goodman MN, et al. Enhanced muscle glucose metabolism after exercise in the rat: the two phases. Am J Physiol 1984; 246 (6 Pt 1): E471–5
37.
Zurück zum Zitat Ivy JL, Lee MC, Brozinick IT, et al. Muscle glycogen storage after different amounts of carbohydrate ingestion. J Appl Physiol 1988; 65 (5): 2018–23PubMed Ivy JL, Lee MC, Brozinick IT, et al. Muscle glycogen storage after different amounts of carbohydrate ingestion. J Appl Physiol 1988; 65 (5): 2018–23PubMed
38.
Zurück zum Zitat Maehlum S, Hostmark AT, Hermansen L. Synthesis of muscle glycogen during recovery after prolonged severe exercise in diabetic and non-diabetic subjects. Scand J Clin Lab Invest 1977; 37: 309–16PubMedCrossRef Maehlum S, Hostmark AT, Hermansen L. Synthesis of muscle glycogen during recovery after prolonged severe exercise in diabetic and non-diabetic subjects. Scand J Clin Lab Invest 1977; 37: 309–16PubMedCrossRef
39.
Zurück zum Zitat Piehl K. Time course for refilling of glycogen stores in human muscle fibres following exercise-induced glycogen depletion. Acta Physiol Scand 1974; 90: 297–302PubMedCrossRef Piehl K. Time course for refilling of glycogen stores in human muscle fibres following exercise-induced glycogen depletion. Acta Physiol Scand 1974; 90: 297–302PubMedCrossRef
40.
Zurück zum Zitat Piehl Aulin K, Soderlund K, Hultman E. Muscle glycogen resynthesis rate in humans after supplementation of drinks containing carbohydrates with low and high molecular masses. Fur J Appl Physiol 2000; 81 (4): 346–51CrossRef Piehl Aulin K, Soderlund K, Hultman E. Muscle glycogen resynthesis rate in humans after supplementation of drinks containing carbohydrates with low and high molecular masses. Fur J Appl Physiol 2000; 81 (4): 346–51CrossRef
41.
Zurück zum Zitat Price TB, Rothman DL, Taylor R, et al. Human muscle glycogen resynthesis after exercise: insulin-dependent and -independent phases. J Appl Physiol 1994; 76: 104–11PubMedCrossRef Price TB, Rothman DL, Taylor R, et al. Human muscle glycogen resynthesis after exercise: insulin-dependent and -independent phases. J Appl Physiol 1994; 76: 104–11PubMedCrossRef
42.
Zurück zum Zitat Robergs RA. Nutrition and exercise determinants of post-exercise glycogen synthesis. Int J Sport Nutr 1991; 1: 307–37fPubMed Robergs RA. Nutrition and exercise determinants of post-exercise glycogen synthesis. Int J Sport Nutr 1991; 1: 307–37fPubMed
43.
Zurück zum Zitat Ivy JL, Katz AL, Cutler CL, et al. Muscle glycogen synthesis after exercise: effect of time of carbohydrate ingestion. J Appl Physiol 1988; 64 (4): 1480–5PubMed Ivy JL, Katz AL, Cutler CL, et al. Muscle glycogen synthesis after exercise: effect of time of carbohydrate ingestion. J Appl Physiol 1988; 64 (4): 1480–5PubMed
44.
Zurück zum Zitat Cohen P. Muscle glycogen synthase. In: Boyer P, Krebs EG, editors. The enzymes. Orlando (FL): Academic Press Incorporation, 1986: 461–97 Cohen P. Muscle glycogen synthase. In: Boyer P, Krebs EG, editors. The enzymes. Orlando (FL): Academic Press Incorporation, 1986: 461–97
45.
Zurück zum Zitat Friedman JE, Neuter PD, Dohm GL. Regulation of glycogen resynthesis following exercise. Sports Med 1991; 11 (4): 232–43PubMedCrossRef Friedman JE, Neuter PD, Dohm GL. Regulation of glycogen resynthesis following exercise. Sports Med 1991; 11 (4): 232–43PubMedCrossRef
46.
Zurück zum Zitat Nielsen IN, Derave W, Kristiansen S, et al. Glycogen synthase localization and activity in rat skeletal muscle is strongly dependent on glycogen content. J Physiol 2001; 531 (Pt 3): 757–69PubMedCrossRef Nielsen IN, Derave W, Kristiansen S, et al. Glycogen synthase localization and activity in rat skeletal muscle is strongly dependent on glycogen content. J Physiol 2001; 531 (Pt 3): 757–69PubMedCrossRef
47.
Zurück zum Zitat Montell E, Arias A, Gómez-Foix AM. Glycogen depletion rather than glucose 6-P increments controls early glycogen recovery in human cultured muscle. Am J Physiol 1999; 276: R1489–95 Montell E, Arias A, Gómez-Foix AM. Glycogen depletion rather than glucose 6-P increments controls early glycogen recovery in human cultured muscle. Am J Physiol 1999; 276: R1489–95
48.
Zurück zum Zitat Zachwieja JJ, Costill DL, Pascoe DD. Influence of muscle glycogen depletion on the rate of resynthesis. Med Sci Sports Exerc 1991; 23 (1): 44–8PubMed Zachwieja JJ, Costill DL, Pascoe DD. Influence of muscle glycogen depletion on the rate of resynthesis. Med Sci Sports Exerc 1991; 23 (1): 44–8PubMed
49.
Zurück zum Zitat Yan Z, Spencer MK, Katz A. Effect of low glycogen on glycogen synthase in human muscle during and after exercise. Acta Physiol Scand 1992; 145: 345–52PubMedCrossRef Yan Z, Spencer MK, Katz A. Effect of low glycogen on glycogen synthase in human muscle during and after exercise. Acta Physiol Scand 1992; 145: 345–52PubMedCrossRef
50.
Zurück zum Zitat McCoy M, Proieto J, Hargreaves M. Skeletal muscle GLUT-4 and postexercise muscle glycogen storage in humans. J Appl Physiol 1996; 80 (2): 411–5PubMed McCoy M, Proieto J, Hargreaves M. Skeletal muscle GLUT-4 and postexercise muscle glycogen storage in humans. J Appl Physiol 1996; 80 (2): 411–5PubMed
51.
Zurück zum Zitat Cartee GD, Young DA, Stepper MD, et al. Prolonged increase in insulin-stimulated glucose transport in muscle after exercise. Am J Physiol 1989; 256: E494–9 Cartee GD, Young DA, Stepper MD, et al. Prolonged increase in insulin-stimulated glucose transport in muscle after exercise. Am J Physiol 1989; 256: E494–9
52.
Zurück zum Zitat Holloszy JO, Naraham HT. Changes in permeability of 3-methylglucose associated with contraction of isolated frog muscles. J Biol Chem 1965; 240: 3493–500PubMed Holloszy JO, Naraham HT. Changes in permeability of 3-methylglucose associated with contraction of isolated frog muscles. J Biol Chem 1965; 240: 3493–500PubMed
53.
Zurück zum Zitat Ivy JL, Holloszy JO. Persistent increase in glucose uptake by rat skeletal muscle following exercise. Am J Physiol 1981; 241 (5): C200–3 Ivy JL, Holloszy JO. Persistent increase in glucose uptake by rat skeletal muscle following exercise. Am J Physiol 1981; 241 (5): C200–3
54.
Zurück zum Zitat Kuo CH, Hunt DG, Ding Z, et al. Effect of carbohydrate supplementation on postexercise GLUT-4 protein expression in skeletal muscle. J Appl Physiol 1999; 87 (6): 2290–5PubMed Kuo CH, Hunt DG, Ding Z, et al. Effect of carbohydrate supplementation on postexercise GLUT-4 protein expression in skeletal muscle. J Appl Physiol 1999; 87 (6): 2290–5PubMed
55.
Zurück zum Zitat Ren JM, Marshall BA, Gulve EA, et al. Evidence from transgenic mice that glucose transport is rate-limiting for glycogen deposition and glycolysis in skeletal muscle. J Biol Chem 1993; 268 (22): 16113–5PubMed Ren JM, Marshall BA, Gulve EA, et al. Evidence from transgenic mice that glucose transport is rate-limiting for glycogen deposition and glycolysis in skeletal muscle. J Biol Chem 1993; 268 (22): 16113–5PubMed
56.
Zurück zum Zitat Ivy JL. Glycogen resynthesis after exercise: effect of carbohydrate intake. IntI Sports Med 1998; 19: S142–5CrossRef Ivy JL. Glycogen resynthesis after exercise: effect of carbohydrate intake. IntI Sports Med 1998; 19: S142–5CrossRef
57.
Zurück zum Zitat Fisher IS, Nolte LA, Kawanaka K, et al. Glucose transport rate and glycogen synthase activity both limit skeletal muscle glycogen accumulation. Am J Physiol Endocrinol Metab 2002; 282 (6): E1214–21 Fisher IS, Nolte LA, Kawanaka K, et al. Glucose transport rate and glycogen synthase activity both limit skeletal muscle glycogen accumulation. Am J Physiol Endocrinol Metab 2002; 282 (6): E1214–21
58.
Zurück zum Zitat Goodyear LJ, Hirshman MF, King PA, et al. Skeletal muscle plasma membrane glucose transport and glucose transporters after exercise. J Appl Physiol 1990; 68: 193–8PubMed Goodyear LJ, Hirshman MF, King PA, et al. Skeletal muscle plasma membrane glucose transport and glucose transporters after exercise. J Appl Physiol 1990; 68: 193–8PubMed
59.
Zurück zum Zitat Kuo CH, Browning KS, Ivy JL. Regulation of GLUT-4 protein expression and glycogen storage after prolonged exercise. Acta Physiol Scand 1999; 165: 193–201PubMedCrossRef Kuo CH, Browning KS, Ivy JL. Regulation of GLUT-4 protein expression and glycogen storage after prolonged exercise. Acta Physiol Scand 1999; 165: 193–201PubMedCrossRef
60.
Zurück zum Zitat Ren JM, Semenkovich CF, Gulve EA, et al. Exercise induces rapid increases in GLUT-4 expression, glucose transport capacity, and insulin-stimulated glycogen storage in muscle. J Biol Chem 1994; 269 (20): 14396–401PubMed Ren JM, Semenkovich CF, Gulve EA, et al. Exercise induces rapid increases in GLUT-4 expression, glucose transport capacity, and insulin-stimulated glycogen storage in muscle. J Biol Chem 1994; 269 (20): 14396–401PubMed
61.
Zurück zum Zitat Kraniou Y, Cameron-Smith D, Misso M, et al. Effects of exercise on GLUT-4 and glycogenin gene expression in human skeletal muscle. J Appl Physiol 2000; 88 (2): 794–6PubMedCrossRef Kraniou Y, Cameron-Smith D, Misso M, et al. Effects of exercise on GLUT-4 and glycogenin gene expression in human skeletal muscle. J Appl Physiol 2000; 88 (2): 794–6PubMedCrossRef
62.
Zurück zum Zitat Ryder JW, Kawano Y, Galuska D, et al. Postexercise glucose uptake and glycogen synthesis in skeletal muscle from GLUT4-deficient mice. FASEB J 1999; 13 (15): 2246–56PubMed Ryder JW, Kawano Y, Galuska D, et al. Postexercise glucose uptake and glycogen synthesis in skeletal muscle from GLUT4-deficient mice. FASEB J 1999; 13 (15): 2246–56PubMed
63.
Zurück zum Zitat Hayashi T, Wojtaszewski JPP, Goodyear LJ. Exercise regulation of glucose transport in skeletal muscle. Am J Physiol 1997; 273: E1039–51 Hayashi T, Wojtaszewski JPP, Goodyear LJ. Exercise regulation of glucose transport in skeletal muscle. Am J Physiol 1997; 273: E1039–51
64.
Zurück zum Zitat Fell RD, Terblanche SE, Ivy JL, et al. Effect of muscle glycogen content on glucose uptake following exercise. J Appl Physiol 1982; 52 (2): 434–7PubMed Fell RD, Terblanche SE, Ivy JL, et al. Effect of muscle glycogen content on glucose uptake following exercise. J Appl Physiol 1982; 52 (2): 434–7PubMed
65.
Zurück zum Zitat Derave W, Lund S, Holman GD, et al. Contraction-stimulated muscle glucose transport and GLUT-4 surface content are dependent on glycogen content. Am J Physiol 1999; 277 (6 Pt 1): E1103–10 Derave W, Lund S, Holman GD, et al. Contraction-stimulated muscle glucose transport and GLUT-4 surface content are dependent on glycogen content. Am J Physiol 1999; 277 (6 Pt 1): E1103–10
66.
Zurück zum Zitat Kawanaka K, Han DH, Nolte LA, et al. Decreased insulinstimulated GLUT-4 translocation in glycogen-supercompensated muscles of exercised rats. Am J Physiol 1999; 276: E907–12 Kawanaka K, Han DH, Nolte LA, et al. Decreased insulinstimulated GLUT-4 translocation in glycogen-supercompensated muscles of exercised rats. Am J Physiol 1999; 276: E907–12
67.
Zurück zum Zitat Coderre L, Kandor KV, Vallega G, et al. Identification and characterization of an exercise-sensitive pool of glucose transporters in skeletal muscle. J Biol Chem 1995; 270 (46): 27584–8PubMedCrossRef Coderre L, Kandor KV, Vallega G, et al. Identification and characterization of an exercise-sensitive pool of glucose transporters in skeletal muscle. J Biol Chem 1995; 270 (46): 27584–8PubMedCrossRef
68.
Zurück zum Zitat Borghouts LB, Keizer HA. Exercise and insulin sensitivity: a review. Int J Sports Med 2000; 21 (1): 1–12PubMedCrossRef Borghouts LB, Keizer HA. Exercise and insulin sensitivity: a review. Int J Sports Med 2000; 21 (1): 1–12PubMedCrossRef
69.
Zurück zum Zitat Hansen PA, Nolte LA, Chen MM, et al. Increased GLUT-4 translocation mediates enhanced insulin sensitivity of muscle glucose transport after exercise. J Appl Physiol 1998; 85 (4): 1218–22PubMed Hansen PA, Nolte LA, Chen MM, et al. Increased GLUT-4 translocation mediates enhanced insulin sensitivity of muscle glucose transport after exercise. J Appl Physiol 1998; 85 (4): 1218–22PubMed
70.
Zurück zum Zitat Wojtaszewski IF, Hansen BF, Gade J, et al. Insulin signalling and insulin sensitivity after exercise in human skeletal muscle. Diabetes 2000; 49 (3): 325–31PubMedCrossRef Wojtaszewski IF, Hansen BF, Gade J, et al. Insulin signalling and insulin sensitivity after exercise in human skeletal muscle. Diabetes 2000; 49 (3): 325–31PubMedCrossRef
71.
Zurück zum Zitat Derave W, Hansen BF, Lund S, et al. Muscle glycogen content affects insulin-stimulated glucose transport and protein kinase B activity. Am J Physiol Endocrinol Metab 2000; 279 (5): E947–55 Derave W, Hansen BF, Lund S, et al. Muscle glycogen content affects insulin-stimulated glucose transport and protein kinase B activity. Am J Physiol Endocrinol Metab 2000; 279 (5): E947–55
72.
Zurück zum Zitat Gao J, Gulve EA, Holloszy JO. Contraction-induced increase in muscle insulin sensitivity: requirement for a serum factor. Am J Physiol 1994; 266 (2 Pt 1): E186–92 Gao J, Gulve EA, Holloszy JO. Contraction-induced increase in muscle insulin sensitivity: requirement for a serum factor. Am J Physiol 1994; 266 (2 Pt 1): E186–92
73.
Zurück zum Zitat Fisher IS, Gao J, Han DH, et al. Activation of AMP kinase enhances sensitivity of muscle glucose transport to insulin. Am J Physiol Endocrinol Metab 2002; 282 (1): E18–23 Fisher IS, Gao J, Han DH, et al. Activation of AMP kinase enhances sensitivity of muscle glucose transport to insulin. Am J Physiol Endocrinol Metab 2002; 282 (1): E18–23
74.
Zurück zum Zitat Parkin JA, Carey MF, Martin IK, et al. Muscle glycogen storage following prolonged exercise: effect of timing of ingestion of high glycemic index food. Med Sci Sports Exerc 1997; 29 (2): 220–4PubMedCrossRef Parkin JA, Carey MF, Martin IK, et al. Muscle glycogen storage following prolonged exercise: effect of timing of ingestion of high glycemic index food. Med Sci Sports Exerc 1997; 29 (2): 220–4PubMedCrossRef
75.
Zurück zum Zitat Laurent D, Hundal RS, Dresner A, et al. Mechanism of muscle glycogen autoregulation in humans. Am J Physiol Endocrinol Metab 2000; 278 (4): E663–8 Laurent D, Hundal RS, Dresner A, et al. Mechanism of muscle glycogen autoregulation in humans. Am J Physiol Endocrinol Metab 2000; 278 (4): E663–8
76.
Zurück zum Zitat Bergstrom J, Hultman E. Synthesis of muscle glycogen in man after glucose and fructose infusion. Acta Med Scand 1967;182 (1): 93–107PubMedCrossRef Bergstrom J, Hultman E. Synthesis of muscle glycogen in man after glucose and fructose infusion. Acta Med Scand 1967;182 (1): 93–107PubMedCrossRef
77.
Zurück zum Zitat Blom PCS. Post-exercise glucose uptake and glycogen synthesis in human muscle during oral or IV glucose intake. Fur J Appl Physiol 1989; 59: 327–33CrossRef Blom PCS. Post-exercise glucose uptake and glycogen synthesis in human muscle during oral or IV glucose intake. Fur J Appl Physiol 1989; 59: 327–33CrossRef
78.
Zurück zum Zitat Blom P, Vaage O, Kardel K, et al. Effect of increasing glucose loads on the rate of muscle glycogen resynthesis after prolonged exercise [abstract]. Acta Physiol Scand 1980; 108: C12 Blom P, Vaage O, Kardel K, et al. Effect of increasing glucose loads on the rate of muscle glycogen resynthesis after prolonged exercise [abstract]. Acta Physiol Scand 1980; 108: C12
79.
Zurück zum Zitat Bowtell JL, Gelly K, Jackman ML, et al. Effect of different carbohydrate drinks on whole body carbohydrate storage after exhaustive exercise. J Appl Physiol 2000; 88 (5): 1529–36PubMed Bowtell JL, Gelly K, Jackman ML, et al. Effect of different carbohydrate drinks on whole body carbohydrate storage after exhaustive exercise. J Appl Physiol 2000; 88 (5): 1529–36PubMed
80.
Zurück zum Zitat Bowtell JL, Gelly K, Jackman ML, et al. Effect of oral glutamine on whole body carbohydrate storage during recovery from exhaustive exercise. J Appl Physiol 1999; 86 (6): 1770–7PubMed Bowtell JL, Gelly K, Jackman ML, et al. Effect of oral glutamine on whole body carbohydrate storage during recovery from exhaustive exercise. J Appl Physiol 1999; 86 (6): 1770–7PubMed
81.
Zurück zum Zitat Carrithers JA, Williamson DL, Galagher PM, et al. Effects of postexercise carbohydrate-protein feedings on muscle glycogen restoration. J Appl Physiol 2000; 88: 1976–82PubMed Carrithers JA, Williamson DL, Galagher PM, et al. Effects of postexercise carbohydrate-protein feedings on muscle glycogen restoration. J Appl Physiol 2000; 88: 1976–82PubMed
82.
Zurück zum Zitat Doyle JA, Sherman WM, Strauss RL. Effects of eccentric and concentric exercise on muscle glycogen replenishment. J Appl Physiol 1993; 74 (4): 1848–55PubMed Doyle JA, Sherman WM, Strauss RL. Effects of eccentric and concentric exercise on muscle glycogen replenishment. J Appl Physiol 1993; 74 (4): 1848–55PubMed
83.
Zurück zum Zitat Greiwe IS, Hickner RC, Hansen PA, et al. Effects of endurance exercise training on muscle glycogen accumulation in humans. J Appl Physiol 1999; 87 (1): 222–6PubMed Greiwe IS, Hickner RC, Hansen PA, et al. Effects of endurance exercise training on muscle glycogen accumulation in humans. J Appl Physiol 1999; 87 (1): 222–6PubMed
84.
Zurück zum Zitat Hansen BF, Asp S, Kiens B, et al. Glycogen concentration in human skeletal muscle: effect of prolonged insulin and glucose infusion. Scand J Med Sci Sports 1999; 9 (4): 209–13PubMedCrossRef Hansen BF, Asp S, Kiens B, et al. Glycogen concentration in human skeletal muscle: effect of prolonged insulin and glucose infusion. Scand J Med Sci Sports 1999; 9 (4): 209–13PubMedCrossRef
85.
Zurück zum Zitat Hickner RC, Fisher IS, Hansen PA, et al. Muscle glycogen accumulation after endurance exercise in trained and untrained individuals. J Appl Physiol 1997; 83 (3): 897–903PubMed Hickner RC, Fisher IS, Hansen PA, et al. Muscle glycogen accumulation after endurance exercise in trained and untrained individuals. J Appl Physiol 1997; 83 (3): 897–903PubMed
86.
Zurück zum Zitat Jentjens RL, van Loon LJ, Mann CH, et al. Addition of protein and amino acids to carbohydrates does not enhance post-exercise muscle glycogen synthesis. J Appl Physiol 2001; 91 (2): 839–46PubMed Jentjens RL, van Loon LJ, Mann CH, et al. Addition of protein and amino acids to carbohydrates does not enhance post-exercise muscle glycogen synthesis. J Appl Physiol 2001; 91 (2): 839–46PubMed
87.
Zurück zum Zitat Maehlum S, Hermansen L. Muscle glycogen concentration during recovery after prolonged severe exercise in fasting subjects. Scand J Clin Lab Invest 1978; 38 (6): 557–60PubMedCrossRef Maehlum S, Hermansen L. Muscle glycogen concentration during recovery after prolonged severe exercise in fasting subjects. Scand J Clin Lab Invest 1978; 38 (6): 557–60PubMedCrossRef
88.
Zurück zum Zitat Maehlum S, Felig P, Wahren J. Splanchic glucose and muscle glycogen metabolism after glucose feeding during post-exercise recovery. Am J Physiol 1978; 4 (3): E255–60 Maehlum S, Felig P, Wahren J. Splanchic glucose and muscle glycogen metabolism after glucose feeding during post-exercise recovery. Am J Physiol 1978; 4 (3): E255–60
89.
Zurück zum Zitat Reed JM, Brozinick IT, Lee MC, et al. Muscle glycogen storage postexercise: effect of mode of carbohydrate administration. J Appl Physiol 1989; 66 (2): 720–6PubMed Reed JM, Brozinick IT, Lee MC, et al. Muscle glycogen storage postexercise: effect of mode of carbohydrate administration. J Appl Physiol 1989; 66 (2): 720–6PubMed
90.
Zurück zum Zitat Roch-Norlund AE, Bergstrom J, Hultman E. Muscle glycogen and glycogen synthetase in normal subjects and in patients with diabetes mellitus: effect of intravenous glucose and insulin administration. Scand J Clin Lab Invest 1972; 30 (1): 77–84PubMedCrossRef Roch-Norlund AE, Bergstrom J, Hultman E. Muscle glycogen and glycogen synthetase in normal subjects and in patients with diabetes mellitus: effect of intravenous glucose and insulin administration. Scand J Clin Lab Invest 1972; 30 (1): 77–84PubMedCrossRef
91.
Zurück zum Zitat Roy BD, Tarnopolsky MA. Influence of differing macronutrient intakes on muscle glycogen resynthesis after resistance exercise. J Appl Physiol 1998; 84 (3): 890–6PubMed Roy BD, Tarnopolsky MA. Influence of differing macronutrient intakes on muscle glycogen resynthesis after resistance exercise. J Appl Physiol 1998; 84 (3): 890–6PubMed
92.
Zurück zum Zitat Tarnopolsky MA, Bosnian M, MacDonald JR, et al. Post-exercise protein-carbohydrate and carbohydrate supplements increase muscle glycogen in men and women. J Appl Physiol 1997; 83 (6): 1877–33PubMed Tarnopolsky MA, Bosnian M, MacDonald JR, et al. Post-exercise protein-carbohydrate and carbohydrate supplements increase muscle glycogen in men and women. J Appl Physiol 1997; 83 (6): 1877–33PubMed
93.
Zurück zum Zitat van Hall G, Saris WH, van de Schoor PA, et al. The effect of free glutamine and peptide ingestion on the rate of muscle glycogen resynthesis in man. Int J Sports Med 2000; 21 (1): 25–30PubMedCrossRef van Hall G, Saris WH, van de Schoor PA, et al. The effect of free glutamine and peptide ingestion on the rate of muscle glycogen resynthesis in man. Int J Sports Med 2000; 21 (1): 25–30PubMedCrossRef
94.
Zurück zum Zitat van Loon LJC, Saris WHM, Kruijshoop M, et al. Maximizing postexercise muscle glycogen synthesis: carbohydrate supplementation and the application of amino acid or protein hydrolysate mixtures. Am J Clin Nutr 2000; 72 (1): 106–11PubMed van Loon LJC, Saris WHM, Kruijshoop M, et al. Maximizing postexercise muscle glycogen synthesis: carbohydrate supplementation and the application of amino acid or protein hydrolysate mixtures. Am J Clin Nutr 2000; 72 (1): 106–11PubMed
95.
Zurück zum Zitat Yaspelkis IBB, Ivy JL. The effect of a carbohydrate-arginine supplement on postexercise carbohydrate metabolism. Int J Sport Nutr 1999; 9 (3): 241–50PubMed Yaspelkis IBB, Ivy JL. The effect of a carbohydrate-arginine supplement on postexercise carbohydrate metabolism. Int J Sport Nutr 1999; 9 (3): 241–50PubMed
96.
Zurück zum Zitat Zawadzki KM, Yaspelkis III BB, Ivy JL. Carbohydrate-protein complex increased the rate of muscle glycogen storage after exercise. J Appl Physiol 1992; 72 (5): 1854–9PubMed Zawadzki KM, Yaspelkis III BB, Ivy JL. Carbohydrate-protein complex increased the rate of muscle glycogen storage after exercise. J Appl Physiol 1992; 72 (5): 1854–9PubMed
97.
Zurück zum Zitat Levenhagen DK, Gresham JD, Carlson MG, et al. Postexercise nutrient intake timing in humans is critical to recovery of leg glucose and protein homeostasis. Am J Physiol Endocrinol Metab 2001; 280 (6): E982–93 Levenhagen DK, Gresham JD, Carlson MG, et al. Postexercise nutrient intake timing in humans is critical to recovery of leg glucose and protein homeostasis. Am J Physiol Endocrinol Metab 2001; 280 (6): E982–93
98.
Zurück zum Zitat Rehrer NJ, Brouns F, Beckers EJ, et al. The influence of beverage composition and gastrointestinal function on fluid and nutrient availability during exercise. Scand J Med Sci Sports 1994; 4: 159–72CrossRef Rehrer NJ, Brouns F, Beckers EJ, et al. The influence of beverage composition and gastrointestinal function on fluid and nutrient availability during exercise. Scand J Med Sci Sports 1994; 4: 159–72CrossRef
99.
Zurück zum Zitat Rotman S, Slotboom J, Kreis R, et al. Muscle glycogen recovery after exercise measured by 13C-magnetic resonance spectroscopy in humans: effect of nutritional solutions. MAGMA 2000; 11 (3): 114–21PubMedCrossRef Rotman S, Slotboom J, Kreis R, et al. Muscle glycogen recovery after exercise measured by 13C-magnetic resonance spectroscopy in humans: effect of nutritional solutions. MAGMA 2000; 11 (3): 114–21PubMedCrossRef
100.
Zurück zum Zitat Floyd Jr JC, Fajans SS, Pek S, et al. Synergistic effect of essential amino acids and glucose upon insulin secretion in man. Diabetes 1970; 19: 109–15PubMed Floyd Jr JC, Fajans SS, Pek S, et al. Synergistic effect of essential amino acids and glucose upon insulin secretion in man. Diabetes 1970; 19: 109–15PubMed
101.
Zurück zum Zitat Floyd Jr JC, Fajans SS, Pek S, et al. Synergistic effect of certain amino acid pairs upon insulin secretion in man. Diabetes 1970; 19: 102–8PubMed Floyd Jr JC, Fajans SS, Pek S, et al. Synergistic effect of certain amino acid pairs upon insulin secretion in man. Diabetes 1970; 19: 102–8PubMed
102.
Zurück zum Zitat van Loon LJC, Saris WHM, Verhagen H, et al. Plasma insulin responses after ingestion of different amino acid or protein mixtures with carbohydrate. Am J Clin Nutr 2000; 72 (1): 96–105PubMed van Loon LJC, Saris WHM, Verhagen H, et al. Plasma insulin responses after ingestion of different amino acid or protein mixtures with carbohydrate. Am J Clin Nutr 2000; 72 (1): 96–105PubMed
103.
Zurück zum Zitat Nuttall FQ, Mooradian AD, Gannon MC, et al. Effect of protein ingestion on the glucose and insulin response to a standardized oral glucose load. Diabetes Care 1984; 7 (5): 465–70PubMedCrossRef Nuttall FQ, Mooradian AD, Gannon MC, et al. Effect of protein ingestion on the glucose and insulin response to a standardized oral glucose load. Diabetes Care 1984; 7 (5): 465–70PubMedCrossRef
104.
Zurück zum Zitat Rabinowitz D, Merimee TJ, Maffezolli R, et al. Patterns of hormonal release after glucose, protein, and glucose plus protein. Lancet 1966; II: 454–6CrossRef Rabinowitz D, Merimee TJ, Maffezolli R, et al. Patterns of hormonal release after glucose, protein, and glucose plus protein. Lancet 1966; II: 454–6CrossRef
105.
Zurück zum Zitat Setter A, Malaisse WJ. L-leucine and a nonmetabolized analogue activate pancreatic islet glutamate dehydrogenase. Nature 1980; 288 (5787): 187–9CrossRef Setter A, Malaisse WJ. L-leucine and a nonmetabolized analogue activate pancreatic islet glutamate dehydrogenase. Nature 1980; 288 (5787): 187–9CrossRef
106.
Zurück zum Zitat van Loon LJC, Kruijshoop M, Verhagen H, et al. Ingestion of protein hydrolysate and amino acid-carbohydrate mixtures increases postexercise plasma insulin responses in men. J Nutr 2000; 130 (10): 2508–13PubMed van Loon LJC, Kruijshoop M, Verhagen H, et al. Ingestion of protein hydrolysate and amino acid-carbohydrate mixtures increases postexercise plasma insulin responses in men. J Nutr 2000; 130 (10): 2508–13PubMed
107.
Zurück zum Zitat Costill DL, Sherman WM, Fink WJ, et al. The role of dietary carbohydrates in muscle glycogen resynthesis after strenuous running. Am J Clin Nutr 1981; 34: 1831–6PubMed Costill DL, Sherman WM, Fink WJ, et al. The role of dietary carbohydrates in muscle glycogen resynthesis after strenuous running. Am J Clin Nutr 1981; 34: 1831–6PubMed
108.
Zurück zum Zitat Hultman E, Bergstrom J, Roch-Norlund AE. Glycogen storage in human skeletal muscle. In: Pernow B, Saltin B, editors. Muscle metabolism during exercise. New York: Plenum Press, 1971: 273–87CrossRef Hultman E, Bergstrom J, Roch-Norlund AE. Glycogen storage in human skeletal muscle. In: Pernow B, Saltin B, editors. Muscle metabolism during exercise. New York: Plenum Press, 1971: 273–87CrossRef
109.
Zurück zum Zitat Rasmussen BB, Tipton KD, Miller SL, et al. An oral essential amino acid-carbohydrate supplement enhances muscle protein anabolism after resistance exercise. J Appl Physiol 2000; 88 (2): 386–92PubMed Rasmussen BB, Tipton KD, Miller SL, et al. An oral essential amino acid-carbohydrate supplement enhances muscle protein anabolism after resistance exercise. J Appl Physiol 2000; 88 (2): 386–92PubMed
110.
Zurück zum Zitat Tipton KD, Ferrando AA, Phillips SM, et al. Postexercise net protein synthesis in human muscle from orally administered amino acids. Am J Physiol 1999; 276 (4 Pt 1): E628–34 Tipton KD, Ferrando AA, Phillips SM, et al. Postexercise net protein synthesis in human muscle from orally administered amino acids. Am J Physiol 1999; 276 (4 Pt 1): E628–34
111.
Zurück zum Zitat Gelfand RA, Barrett EJ. Effect of physiologic hypertnsulinemia on skeletal muscle protein synthesis and breakdown in man. J Clin Invest 1987; 80: 1–6PubMedCrossRef Gelfand RA, Barrett EJ. Effect of physiologic hypertnsulinemia on skeletal muscle protein synthesis and breakdown in man. J Clin Invest 1987; 80: 1–6PubMedCrossRef
112.
Zurück zum Zitat Hillier TA, Fryburg DA, Jahn LA, et al. Extreme hypertnsulinemia unmasks insulin’s effect to stimulate protein synthesis in the human forearm. Am J Physiol 1998; 274: E1067–74 Hillier TA, Fryburg DA, Jahn LA, et al. Extreme hypertnsulinemia unmasks insulin’s effect to stimulate protein synthesis in the human forearm. Am J Physiol 1998; 274: E1067–74
113.
Zurück zum Zitat Jenkins DJA, Wolever TM, Taylor RH, et al. Glycemic index of foods: a physiological basis for carbohydrate exchange. Am J Clin Nutr 1981; 34: 362–6PubMed Jenkins DJA, Wolever TM, Taylor RH, et al. Glycemic index of foods: a physiological basis for carbohydrate exchange. Am J Clin Nutr 1981; 34: 362–6PubMed
114.
Zurück zum Zitat Wolever TMS, Jenkins DJA, Jenkins AL, et al. The glycemic index: methodology and clinical implications. Am J Clin Nutr 1991; 54: 846–54PubMed Wolever TMS, Jenkins DJA, Jenkins AL, et al. The glycemic index: methodology and clinical implications. Am J Clin Nutr 1991; 54: 846–54PubMed
115.
Zurück zum Zitat Coulee RK, Lawler RM, Ross PE. Effects of glucose or fructose feeding on glycogen repletion in muscle and liver after exercise or fasting. Ann Nutr Metab 1987; 31: 126–32CrossRef Coulee RK, Lawler RM, Ross PE. Effects of glucose or fructose feeding on glycogen repletion in muscle and liver after exercise or fasting. Ann Nutr Metab 1987; 31: 126–32CrossRef
116.
Zurück zum Zitat van den Bergh AJ, Huutman S, Heerschap A, et al. Muscle glycogen recovery after exercise during glucose and fructose intake monitored by 13C-NMR. J Appl Physiol 1996; 81 (4): 1495–500 van den Bergh AJ, Huutman S, Heerschap A, et al. Muscle glycogen recovery after exercise during glucose and fructose intake monitored by 13C-NMR. J Appl Physiol 1996; 81 (4): 1495–500
117.
Zurück zum Zitat Fujisawa T, Mulligan K, Wada L, et al. The effect of exercise on fructose absorption. Am J Clin Nutr 1993; 58 (1): 75–9PubMed Fujisawa T, Mulligan K, Wada L, et al. The effect of exercise on fructose absorption. Am J Clin Nutr 1993; 58 (1): 75–9PubMed
118.
Zurück zum Zitat Henry RR, Crapo PA, Thorburn AW. Current issues in fructose metabolism. Annu Rev Nutr 1991; 11: 21–39PubMedCrossRef Henry RR, Crapo PA, Thorburn AW. Current issues in fructose metabolism. Annu Rev Nutr 1991; 11: 21–39PubMedCrossRef
119.
Zurück zum Zitat Chen M, Whistler RL. Metabolism of D-fructose. Adv Carbohydr Chem Biochem 1977; 34: 265–343PubMed Chen M, Whistler RL. Metabolism of D-fructose. Adv Carbohydr Chem Biochem 1977; 34: 265–343PubMed
120.
Zurück zum Zitat Mayes PA. Intermediary metabolism of fructose. Am J Clin Nutr 1993; 58: 754S-65S Mayes PA. Intermediary metabolism of fructose. Am J Clin Nutr 1993; 58: 754S-65S
121.
Zurück zum Zitat Mendolff AI, Weichselbaum TE. Role of the human liver in the assimilation of intravenously administered fructose. Metabolism 1953; 2: 450–8 Mendolff AI, Weichselbaum TE. Role of the human liver in the assimilation of intravenously administered fructose. Metabolism 1953; 2: 450–8
122.
Zurück zum Zitat Nilsson LH, Hultman E. Liver and muscle glycogen in man after glucose and fructose infusion. Scand J Clin Lab Invest 1974; 33: 5–10PubMedCrossRef Nilsson LH, Hultman E. Liver and muscle glycogen in man after glucose and fructose infusion. Scand J Clin Lab Invest 1974; 33: 5–10PubMedCrossRef
123.
Zurück zum Zitat Casey A, Mann R, Banister K, et al. Effect of carbohydrate ingestion on glycogen resynthesis in human liver and skeletal muscle, measured by 13C MRS. Am J Physiol 2000; 278: E65–75 Casey A, Mann R, Banister K, et al. Effect of carbohydrate ingestion on glycogen resynthesis in human liver and skeletal muscle, measured by 13C MRS. Am J Physiol 2000; 278: E65–75
124.
Zurück zum Zitat Burke LM, Collier GR, Hargreaves M. Glycemic index: a new tool in sport nutrition? Int J Sport Nutr 1998; 8: 401–15PubMed Burke LM, Collier GR, Hargreaves M. Glycemic index: a new tool in sport nutrition? Int J Sport Nutr 1998; 8: 401–15PubMed
125.
Zurück zum Zitat Kiens B, Raben B, Valeur AK, et al. Benefit of dietary simple carbohydrates on the early postexercise muscle glycogen repletion in male athletes [abstract 524]. Med Sci Sports Exerc 1990; 22 (Suppl. 4): S88 Kiens B, Raben B, Valeur AK, et al. Benefit of dietary simple carbohydrates on the early postexercise muscle glycogen repletion in male athletes [abstract 524]. Med Sci Sports Exerc 1990; 22 (Suppl. 4): S88
126.
Zurück zum Zitat Coleman E. Update on carbohydrate: solid versus liquid. Int J Sport Nutr 1994; 4 (2): 80–8PubMed Coleman E. Update on carbohydrate: solid versus liquid. Int J Sport Nutr 1994; 4 (2): 80–8PubMed
127.
Zurück zum Zitat Ebeling P, Bourey R, Koranyi L, et al. Mechanism of enhanced insulin sensitivity in athletes: increased blood flow, muscle glucose transport protein (GLUT-4) concentration, and glycogen synthase activity. J Clin Invest 1993; 92 (4): 1623–31PubMedCrossRef Ebeling P, Bourey R, Koranyi L, et al. Mechanism of enhanced insulin sensitivity in athletes: increased blood flow, muscle glucose transport protein (GLUT-4) concentration, and glycogen synthase activity. J Clin Invest 1993; 92 (4): 1623–31PubMedCrossRef
128.
Zurück zum Zitat Hardin DS, Azzarelli B, Edwards J, et al. Mechanism of enhanced insulin sensitivity in endurance-trained athletes: effects on blood flow and differential expression of GLUT-4 in skeletal muscles. J Clin Endocrinol Metab 1995; 80 (8): 2437–46PubMedCrossRef Hardin DS, Azzarelli B, Edwards J, et al. Mechanism of enhanced insulin sensitivity in endurance-trained athletes: effects on blood flow and differential expression of GLUT-4 in skeletal muscles. J Clin Endocrinol Metab 1995; 80 (8): 2437–46PubMedCrossRef
129.
Zurück zum Zitat Gulve EA, Spina RJ. Effect of 7–10 days of cycle ergometer exercise on skeletal muscle glut-4 protein content. J Appl Physiol 1995; 79 (5): 1562–6PubMed Gulve EA, Spina RJ. Effect of 7–10 days of cycle ergometer exercise on skeletal muscle glut-4 protein content. J Appl Physiol 1995; 79 (5): 1562–6PubMed
130.
Zurück zum Zitat Host HH, Hansen PA, Nolte LA, et al. Rapid reversal of adaptive increases in muscle GLUT-4 and glucose transport capacity after training cessation. J Appl Physiol 1998; 84 (3): 798–802PubMed Host HH, Hansen PA, Nolte LA, et al. Rapid reversal of adaptive increases in muscle GLUT-4 and glucose transport capacity after training cessation. J Appl Physiol 1998; 84 (3): 798–802PubMed
131.
Zurück zum Zitat Philips SM, Han XX, Green HJ, et al. Increments in skeletal muscle GLUT-1 and GLUT-4 after endurance training in humans. Am J Physiol 1996; 270: E456–62 Philips SM, Han XX, Green HJ, et al. Increments in skeletal muscle GLUT-1 and GLUT-4 after endurance training in humans. Am J Physiol 1996; 270: E456–62
132.
Zurück zum Zitat Houmard JA, Shaw CD, Hickey MS, et al. Effect of short-term exercise training on insulin-stimulated PI 3-kinase activity in human skeletal muscle. Am J Physiol 1999; 277 (6 Pt 1): E1055–60 Houmard JA, Shaw CD, Hickey MS, et al. Effect of short-term exercise training on insulin-stimulated PI 3-kinase activity in human skeletal muscle. Am J Physiol 1999; 277 (6 Pt 1): E1055–60
133.
Zurück zum Zitat Kirwan JP, del Aguila LF, Hernandez JM, et al. Regular exercise enhances insulin activation of IRS-1-associated P13-kinase in human skeletal muscle. J Appl Physiol 2000; 88 (2): 797–803PubMed Kirwan JP, del Aguila LF, Hernandez JM, et al. Regular exercise enhances insulin activation of IRS-1-associated P13-kinase in human skeletal muscle. J Appl Physiol 2000; 88 (2): 797–803PubMed
134.
Zurück zum Zitat Nakatani A, Han HD, Hansen PA, et al. Effect of endurance exercise training on muscle glycogen supercompensation in rats. J Appl Physiol 1997; 82: 711–5PubMed Nakatani A, Han HD, Hansen PA, et al. Effect of endurance exercise training on muscle glycogen supercompensation in rats. J Appl Physiol 1997; 82: 711–5PubMed
135.
Zurück zum Zitat Kawanaka K, Tabata I, Katsuta S, et al. Changes in insulin-stimulated glucose transport and GLUT-4 protein in rat skeletal muscle after training. J Appl Physiol 1997; 83 (6): 2043–7PubMed Kawanaka K, Tabata I, Katsuta S, et al. Changes in insulin-stimulated glucose transport and GLUT-4 protein in rat skeletal muscle after training. J Appl Physiol 1997; 83 (6): 2043–7PubMed
136.
Zurück zum Zitat Host HH, Hansen PA, Nolte LA, et al. Glycogen supercompensation masks the effect of a training-induced increase in GLUT-4 on muscle transport. J Appl Physiol 1998; 85 (1): 133–8PubMed Host HH, Hansen PA, Nolte LA, et al. Glycogen supercompensation masks the effect of a training-induced increase in GLUT-4 on muscle transport. J Appl Physiol 1998; 85 (1): 133–8PubMed
137.
Zurück zum Zitat Piehl K, Adolfsson S, Nazar K. Glycogen storage and glycogen synthase activity in trained and untrained muscle of man. Acta Physiol Scand 1974; 90: 779–88PubMedCrossRef Piehl K, Adolfsson S, Nazar K. Glycogen storage and glycogen synthase activity in trained and untrained muscle of man. Acta Physiol Scand 1974; 90: 779–88PubMedCrossRef
138.
Zurück zum Zitat Bonen A, Ness GW, Belcastro AN, et al. Mild exercise impedes glycogen repletion in muscle. J Appl Physiol 1985; 58 (5): 1622–9PubMed Bonen A, Ness GW, Belcastro AN, et al. Mild exercise impedes glycogen repletion in muscle. J Appl Physiol 1985; 58 (5): 1622–9PubMed
139.
Zurück zum Zitat Price TB, Laurent D, Petersen KF, et al. Glycogen loading alters muscle glycogen resynthesis after exercise. J Appl Physiol 2000; 88 (2): 698–704PubMed Price TB, Laurent D, Petersen KF, et al. Glycogen loading alters muscle glycogen resynthesis after exercise. J Appl Physiol 2000; 88 (2): 698–704PubMed
140.
Zurück zum Zitat Azpiazu I, Manchester J, Skurat AV, et al. Control of glycogen synthesis is shared between glucose transport and glycogen synthase in skeletal muscle fibers. Am J Physiol Endocrinol Metab 2000; 278 (2): E234–43 Azpiazu I, Manchester J, Skurat AV, et al. Control of glycogen synthesis is shared between glucose transport and glycogen synthase in skeletal muscle fibers. Am J Physiol Endocrinol Metab 2000; 278 (2): E234–43
141.
Zurück zum Zitat Vollestad NK, Blom PCS, Gronnerod O. Resynthesis of glycogen in different muscle fibre types after prolonged exhaustive exercise in man. Acta Physiol Scand 1989; 137: 15–21PubMedCrossRef Vollestad NK, Blom PCS, Gronnerod O. Resynthesis of glycogen in different muscle fibre types after prolonged exhaustive exercise in man. Acta Physiol Scand 1989; 137: 15–21PubMedCrossRef
142.
Zurück zum Zitat Essen B, Henriksson J. Glycogen content of individual muscle fibres in man. Acta Physiol Scand 1974; 90: 645–7PubMedCrossRef Essen B, Henriksson J. Glycogen content of individual muscle fibres in man. Acta Physiol Scand 1974; 90: 645–7PubMedCrossRef
143.
Zurück zum Zitat Lillicja S, Young AA, Cutter CL, et al. Skeletal muscle capillary density and fiber type are possible determinants of in vivo insulin resistance in man. J Clin Invest 1987; 80 (2): 415–24CrossRef Lillicja S, Young AA, Cutter CL, et al. Skeletal muscle capillary density and fiber type are possible determinants of in vivo insulin resistance in man. J Clin Invest 1987; 80 (2): 415–24CrossRef
144.
Zurück zum Zitat Defronzo RA, Jacot E, Maeder E, et al. The effect of insulin on the disposal of intravenous glucose: results from indirect calorimetry and hepatic and femoral venous catherization. Diabetes 1981; 30: 1000–7PubMed Defronzo RA, Jacot E, Maeder E, et al. The effect of insulin on the disposal of intravenous glucose: results from indirect calorimetry and hepatic and femoral venous catherization. Diabetes 1981; 30: 1000–7PubMed
145.
Zurück zum Zitat Gaster M, Poulsen P, Handberg A, et al. Direct evidence of fiber type-dependent GLUT-4 expression in human skeletal muscle. Am J Physiol Endocrinol Metab 2000; 278 (5): E910–6 Gaster M, Poulsen P, Handberg A, et al. Direct evidence of fiber type-dependent GLUT-4 expression in human skeletal muscle. Am J Physiol Endocrinol Metab 2000; 278 (5): E910–6
146.
Zurück zum Zitat Daugaard JR, Nielsen IN, Kristiansen S, et al. Fiber type-specific expression of GLUT4 in human skeletal muscle: influence of exercise training. Diabetes 2000; 49 (7): 1092–5PubMedCrossRef Daugaard JR, Nielsen IN, Kristiansen S, et al. Fiber type-specific expression of GLUT4 in human skeletal muscle: influence of exercise training. Diabetes 2000; 49 (7): 1092–5PubMedCrossRef
147.
Zurück zum Zitat Pascoe DD, Gladden LB. Muscle glycogen resynthesis after short term, high intensity exercise and resistance exercise. Sports Med 1996; 21 (2): 98–118PubMedCrossRef Pascoe DD, Gladden LB. Muscle glycogen resynthesis after short term, high intensity exercise and resistance exercise. Sports Med 1996; 21 (2): 98–118PubMedCrossRef
148.
Zurück zum Zitat Bangsbo J, Golnick PD, Graham TE, et al. Substrates for muscle glycogen synthesis in recovery from intense exercise in man. J Physiol 1991; 434: 423–40PubMed Bangsbo J, Golnick PD, Graham TE, et al. Substrates for muscle glycogen synthesis in recovery from intense exercise in man. J Physiol 1991; 434: 423–40PubMed
149.
Zurück zum Zitat MacDougall JD, Ward GR, Sale DG, et al. Muscle glycogen repletion after high-intensity intermittent exercise. J Appl Physiol 1977; 42 (2): 129–32PubMed MacDougall JD, Ward GR, Sale DG, et al. Muscle glycogen repletion after high-intensity intermittent exercise. J Appl Physiol 1977; 42 (2): 129–32PubMed
150.
Zurück zum Zitat O’Reilly KP, Warhol MJ, Fielding RA, et al. Eccentric exercise-induced muscle damage impairs muscle glycogen repletion. J Appl Physiol 1987; 63 (1): 252–6PubMed O’Reilly KP, Warhol MJ, Fielding RA, et al. Eccentric exercise-induced muscle damage impairs muscle glycogen repletion. J Appl Physiol 1987; 63 (1): 252–6PubMed
151.
Zurück zum Zitat Sherman WM, Costill DL, Fink WJ, et al. Effect of a 42.2-km footrace and subsequent rest or exercise on muscle glycogen enzymes. J Appl Physiol 1983; 55 (4): 1219–24PubMed Sherman WM, Costill DL, Fink WJ, et al. Effect of a 42.2-km footrace and subsequent rest or exercise on muscle glycogen enzymes. J Appl Physiol 1983; 55 (4): 1219–24PubMed
152.
Zurück zum Zitat Widrick JJ, Costill DL, Fink WJ, et al. Carbohydrate feedings and exercise performance: effect of initial glycogen concentration. J Appl Physiol 1993; 74: 2998–3005PubMed Widrick JJ, Costill DL, Fink WJ, et al. Carbohydrate feedings and exercise performance: effect of initial glycogen concentration. J Appl Physiol 1993; 74: 2998–3005PubMed
153.
Zurück zum Zitat Asp S, Daugaard JR, Richter EA. Eccentric exercise decreases glucose transporter GLUT-4 protein in human skeletal muscle. J Physiol 1995; 482: 705–12PubMed Asp S, Daugaard JR, Richter EA. Eccentric exercise decreases glucose transporter GLUT-4 protein in human skeletal muscle. J Physiol 1995; 482: 705–12PubMed
154.
Zurück zum Zitat Kirwan JP, Hickner RC, Yarashesis KE, et al. Eccentric exercise induces transient insulin resistance in healthy individuals. J Appl Physiol 1992; 72 (6): 2197–202PubMedCrossRef Kirwan JP, Hickner RC, Yarashesis KE, et al. Eccentric exercise induces transient insulin resistance in healthy individuals. J Appl Physiol 1992; 72 (6): 2197–202PubMedCrossRef
155.
Zurück zum Zitat Forster J, Morris AS, Shearer JD, et al. Glucose uptake and flux through phosphofructokinase in wounded rat skeletal muscle. Am J Physiol 1989; 256 (19): E788–97 Forster J, Morris AS, Shearer JD, et al. Glucose uptake and flux through phosphofructokinase in wounded rat skeletal muscle. Am J Physiol 1989; 256 (19): E788–97
156.
Zurück zum Zitat Schearer JD, Amaral IF, Caldwell MD. Glucose metabolism of injured skeletal muscle: the contribution of inflammatory cells. Cite Shock 1988; 25: 131–8 Schearer JD, Amaral IF, Caldwell MD. Glucose metabolism of injured skeletal muscle: the contribution of inflammatory cells. Cite Shock 1988; 25: 131–8
157.
Zurück zum Zitat Costill DL, Pascoe DD, Fink WJ, et al. Impaired muscle glycogen resynthesis after eccentric exercise. J Appl Physiol 1990; 69 (1): 46–50PubMed Costill DL, Pascoe DD, Fink WJ, et al. Impaired muscle glycogen resynthesis after eccentric exercise. J Appl Physiol 1990; 69 (1): 46–50PubMed
158.
Zurück zum Zitat Smith LL. Acute inflammation: the underlying mechanism in delayed onset muscle soreness? Med Sci Sports 1991; 23 (5): 542–51 Smith LL. Acute inflammation: the underlying mechanism in delayed onset muscle soreness? Med Sci Sports 1991; 23 (5): 542–51
159.
Zurück zum Zitat Moodley D, Noakes TD, Bosch AN, et al. Oxidation of exogenous carbohydrate during prolonged exercise: the effects of the carbohydrate type and its concentration. Ear J Appl Physiol 1992; 64 (4): 328–34CrossRef Moodley D, Noakes TD, Bosch AN, et al. Oxidation of exogenous carbohydrate during prolonged exercise: the effects of the carbohydrate type and its concentration. Ear J Appl Physiol 1992; 64 (4): 328–34CrossRef
160.
Zurück zum Zitat Rehrer NJ, Wagenmakers AIM, Beckers EJ, et al. Gastric emptying, absorption and carbohydrate oxidation during prolonged exercise. J Appl Physiol 1992; 72: 468–75PubMed Rehrer NJ, Wagenmakers AIM, Beckers EJ, et al. Gastric emptying, absorption and carbohydrate oxidation during prolonged exercise. J Appl Physiol 1992; 72: 468–75PubMed
161.
Zurück zum Zitat Duchman SM, Ryan AJ, Schedl HP, et al. Upper limit for intestinal absorption of a dilute glucose solution in men at rest. Med Sci Sports Exerc 1997; 29 (4): 482–8PubMedCrossRef Duchman SM, Ryan AJ, Schedl HP, et al. Upper limit for intestinal absorption of a dilute glucose solution in men at rest. Med Sci Sports Exerc 1997; 29 (4): 482–8PubMedCrossRef
162.
Zurück zum Zitat Radziuk J, Bondy DC. Abnormal oral glucose tolerance and glucose malabsorption after vagotomy and pyloroplasty. Gastroenterology 1982; 83: 1017–25PubMed Radziuk J, Bondy DC. Abnormal oral glucose tolerance and glucose malabsorption after vagotomy and pyloroplasty. Gastroenterology 1982; 83: 1017–25PubMed
163.
Zurück zum Zitat Hamilton KS, Gibbons FK, Bracy DP, et al. Effect of prior exercise on the partitioning of an intestinal glucose load between splanchnic bed and skeletal muscle. J Clin Invest 1996; 98 (1): 125–35PubMedCrossRef Hamilton KS, Gibbons FK, Bracy DP, et al. Effect of prior exercise on the partitioning of an intestinal glucose load between splanchnic bed and skeletal muscle. J Clin Invest 1996; 98 (1): 125–35PubMedCrossRef
164.
Zurück zum Zitat Rose AJ, Howlett K, King DS, et al. Effect of prior exercise on glucose metabolism in trained men. Am J Physiol Endocrinol Metab 2001; 281 (4): E766–71 Rose AJ, Howlett K, King DS, et al. Effect of prior exercise on glucose metabolism in trained men. Am J Physiol Endocrinol Metab 2001; 281 (4): E766–71
165.
Zurück zum Zitat Gollnick PD, Pernow B, Essen B, et al. Availability of glycogen and plasma FFA for substrate utilization in leg muscle of man during exercise. Clin Physiol 1981; 1: 27–42CrossRef Gollnick PD, Pernow B, Essen B, et al. Availability of glycogen and plasma FFA for substrate utilization in leg muscle of man during exercise. Clin Physiol 1981; 1: 27–42CrossRef
Metadaten
Titel
Determinants of Post-Exercise Glycogen Synthesis During Short-Term Recovery
Publikationsdatum
01.02.2003
Erschienen in
Sports Medicine / Ausgabe 2/2003
Print ISSN: 0112-1642
Elektronische ISSN: 1179-2035
DOI
https://doi.org/10.2165/00007256-200333020-00004

Weitere Artikel der Ausgabe 2/2003

Sports Medicine 2/2003 Zur Ausgabe

Arthropedia

Grundlagenwissen der Arthroskopie und Gelenkchirurgie. Erweitert durch Fallbeispiele, Videos und Abbildungen. 
» Jetzt entdecken

Update Orthopädie und Unfallchirurgie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.