The effects of low and high glycemic index foods on exercise performance and beta-endorphin responses.

Athanasios Z Jamurtas, Trifon Tofas, Ioannis Fatouros, Michalis G Nikolaidis, Vassilis Paschalis, Christina Yfanti, Stefanos Raptis, Yiannis Koutedakis
Author Information
  1. Athanasios Z Jamurtas: University of Thessaly, Department of Physical Education and Sport Science, Karies, 42100, Trikala, Greece. ajamurt@pe.uth.gr.

Abstract

Τhe aim of this study was to examine the effects of the consumption of foods of various glycemic index values on performance, β-endorphin levels and substrate (fat and carbohydrate) utilization during prolonged exercise. Eight untrained healthy males underwent, in a randomized counterbalanced design, three experimental conditions under which they received carbohydrates (1.5 gr. kg-1 of body weight) of low glycemic index (LGI), high glycemic index (HGI) or placebo. Food was administered 30 min prior to exercise. Subjects cycled for 60 min at an intensity corresponding to 65% of VO2max, which was increased to 90% of VO2max, then they cycled until exhaustion and the time to exhaustion was recorded. Blood was collected prior to food consumption, 15 min prior to exercise, 0, 20, 40, and 60 min into exercise as well as at exhaustion. Blood was analyzed for β-endorphin, glucose, insulin, and lactate. The mean time to exhaustion did not differ between the three conditions (LGI = 3.2 ± 0.9 min; HGI = 2.9 ± 0.9 min; placebo = 2.7 ± 0.7 min). There was a significant interaction in glucose and insulin response (P < 0.05) with HGI exhibiting higher values before exercise. β-endorphin increased significantly (P < 0.05) at the end of exercise without, however, a significant interaction between the three conditions. Rate of perceived exertion, heart rate, ventilation, lactate, respiratory quotient and substrate oxidation rate did not differ between the three conditions. The present study indicates that ingestion of foods of different glycemic index 30 min prior to one hour cycling exercise does not result in significant changes in exercise performance, β-endorphin levels as well as carbohydrate and fat oxidation during exercise.

References

  1. Med Sci Sports Exerc. 2000 Sep;32(9):1570-5 [PMID: 10994906]
  2. Int J Sports Med. 1991 Apr;12(2):180-6 [PMID: 1860741]
  3. Int J Sports Physiol Perform. 2009 Sep;4(3):331-44 [PMID: 19953821]
  4. Eur J Appl Physiol Occup Physiol. 1997;76(3):203-8 [PMID: 9286598]
  5. J Appl Physiol (1985). 1996 Sep;81(3):1115-20 [PMID: 8889742]
  6. Eur J Appl Physiol Occup Physiol. 1982;49(3):389-99 [PMID: 6754371]
  7. Int J Sports Med. 2005 Feb;26 Suppl 1:S28-37 [PMID: 15702454]
  8. Sports Med. 1997 Jul;24(1):8-16 [PMID: 9257407]
  9. Sports Med. 1998 Jan;25(1):7-23 [PMID: 9458524]
  10. Med Sci Sports Exerc. 1999 Mar;31(3):393-9 [PMID: 10188743]
  11. Pol Arch Med Wewn. 1994 Jun;91(6):446-50 [PMID: 7971465]
  12. Eur J Appl Physiol Occup Physiol. 1997;75(2):132-5 [PMID: 9118978]
  13. Med Sci Sports Exerc. 1998 Jun;30(6):844-9 [PMID: 9624641]
  14. J Appl Physiol (1985). 1986 Jul;61(1):165-72 [PMID: 3525502]
  15. Eur J Appl Physiol Occup Physiol. 1995;70(3):195-9 [PMID: 7607192]
  16. Chest. 2001 Nov;120(5):1702-8 [PMID: 11713156]
  17. Int J Sports Physiol Perform. 2009 Sep;4(3):367-80 [PMID: 19953824]
  18. J Sports Sci. 2001 Dec;19(12):931-5 [PMID: 11820687]
  19. Can J Appl Physiol. 2001;26 Suppl:S64-70 [PMID: 11897884]
  20. Eur J Appl Physiol Occup Physiol. 1988;57(2):230-4 [PMID: 2965009]
  21. Appl Physiol Nutr Metab. 2008 Jun;33(3):441-9 [PMID: 18461096]
  22. J Appl Physiol (1985). 1994 Jun;76(6):2452-60 [PMID: 7928870]
  23. J Strength Cond Res. 2004 Aug;18(3):466-72 [PMID: 15320674]
  24. J Appl Physiol. 1974 Aug;37(2):247-8 [PMID: 4850854]
  25. Int J Sport Nutr. 1994 Dec;4(4):361-73 [PMID: 7874152]
  26. Br J Sports Med. 1993 Mar;27(1):34-5 [PMID: 8457809]
  27. Med Sci Sports Exerc. 1987 Apr;19(2):78-82 [PMID: 3574052]
  28. J Physiol Anthropol Appl Human Sci. 2004 Jan;23(1):1-6 [PMID: 14757995]
  29. Horm Res. 1991;36(1-2):32-5 [PMID: 1814798]
  30. Med Sci Sports Exerc. 2010 Jan;42(1):142-51 [PMID: 20010119]
  31. J Sci Med Sport. 2010 Jan;13(1):182-8 [PMID: 19230767]
  32. J Appl Physiol (1985). 1996 Aug;81(2):853-7 [PMID: 8872656]
  33. J Appl Physiol (1985). 2000 Nov;89(5):1845-51 [PMID: 11053335]
  34. Int J Sports Med. 2011 Sep;32(9):666-71 [PMID: 21590643]
  35. Am J Clin Nutr. 1981 Mar;34(3):362-6 [PMID: 6259925]
  36. Med Sci Sports Exerc. 1990 Apr;22(2):241-4 [PMID: 2141380]
  37. Int J Sports Med. 1991 Jun;12(3):264-8 [PMID: 1889933]
  38. Med Sci Sports Exerc. 1999 Jan;31(1):164-70 [PMID: 9927025]

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