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Effect of the Glycemic Index of Meals on Physical Exercise: A Case Report


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Karelis AD, Smith JEW, Passe DH, et al. Carbohydrate Administration and Exercise Performance. Sports Med 2010;40(9):747–763.KarelisADSmithJEWPasseDHet alCarbohydrate Administration and Exercise PerformanceSports Med201040974776310.2165/11533080-000000000-0000020726621Search in Google Scholar

Jeukendrup AE. Carbohydrate feeding during exercise. European Journal of Sport Science 2008;8:2,77-86.JeukendrupAECarbohydrate feeding during exerciseEuropean Journal of Sport Science200882778610.1080/17461390801918971Search in Google Scholar

Hansen EA, Emanuelsen A, Gertsen RM, et al. Effect of freely chosen vs. a scientifically based nutritional strategy on marathon race performance. Journal of the International Society of Sports Nutrition 2013;10(Suppl 1):P8;HansenEAEmanuelsenAGertsenRMet alEffect of freely chosen vs. a scientifically based nutritional strategy on marathon race performanceJournal of the International Society of Sports Nutrition201310Suppl 1P810.1186/1550-2783-10-S1-P8Search in Google Scholar

Too B et al. Natural versus commercial carbohydrate supplementation and endurance running performance. Journal of the International Society of Sports Nutrition 2012;9:27.TooBet alNatural versus commercial carbohydrate supplementation and endurance running performanceJournal of the International Society of Sports Nutrition201292710.1186/1550-2783-9-27346479322704463Search in Google Scholar

Capuano E. The behavior of dietary fiber in the gastrointestinal tract determines its physiological effect. Critical Reviews in Food Science and Nutrition 2017;57:16,35433564.CapuanoEThe behavior of dietary fiber in the gastrointestinal tract determines its physiological effectCritical Reviews in Food Science and Nutrition201757163543356410.1080/10408398.2016.118050127229126Search in Google Scholar

Dhital S, Dolan G, Stokes J. et al. Enzymatic hydrolysis of starch in the presence of cereal soluble fibre polysaccharides. Food Funct 2014; 5:579–586.DhitalSDolanGStokesJ.et alEnzymatic hydrolysis of starch in the presence of cereal soluble fibre polysaccharidesFood Funct2014557958610.1039/c3fo60506j24500609Search in Google Scholar

Evans GH, Shirreffs SM, Maughan RJ. Acute effects of ingesting glucose solutions on blood and plasma volume. Brit J Nutr 2009;101:1503–8.EvansGHShirreffsSMMaughanRJAcute effects of ingesting glucose solutions on blood and plasma volumeBrit J Nutr20091011503810.1017/S000711450807629018840313Search in Google Scholar

Jentjens, RLPG, Moseley L, Waring RH, et al. Oxidation of combined ingestion of glucose and fructose during exercise. J Appl Physiol 2004;96:1277–1284.JentjensRLPGMoseleyLWaringRHet alOxidation of combined ingestion of glucose and fructose during exerciseJ Appl Physiol2004961277128410.1152/japplphysiol.00974.200314657042Search in Google Scholar

Wong SHS, Sui PM, Lok A, et al. Effect of the glycaemic index of pre-exercise carbohydrate meals on running performance. Eur J Sports Sci 2008;8:23–33.WongSHSSuiPMLokAet alEffect of the glycaemic index of pre-exercise carbohydrate meals on running performanceEur J Sports Sci20088233310.1080/17461390701819451Search in Google Scholar

Cazal MM, Alfenas RCG, Peluzio MCG, et al. Impact of meal’s glycemic index pre-exercise in the performance. J Anal Pharm Res. 2018;7(3):289-296.CazalMMAlfenasRCGPeluzioMCGet alImpact of meal’s glycemic index pre-exercise in the performanceJ Anal Pharm Res20187328929610.15406/japlr.2018.07.00243Search in Google Scholar

DeMarco HM, Sucher KP, Cisar CJ, et al. Pre-exercise carbohydrate meals: application of glycemic index. Med Sci Sports Exerc 1999;31:164–70.DeMarcoHMSucherKPCisarCJet alPre-exercise carbohydrate meals: application of glycemic indexMed Sci Sports Exerc1999311647010.1097/00005768-199901000-000259927025Search in Google Scholar

Moore LJ, Midgley AW, Thurlow S, et al. Effect of the glycaemic index of a pre-exercise meal on metabolism and cycling time trial performance. J Sci Med Sport 2010;13:182–8.MooreLJMidgleyAWThurlowSet alEffect of the glycaemic index of a pre-exercise meal on metabolism and cycling time trial performanceJ Sci Med Sport201013182810.1016/j.jsams.2008.11.00619230767Search in Google Scholar

Rytz A, Adeline D, Lê KA, et al. Predicting Glycemic Index and Glycemic Load from Macronutrients to Accelerate Development of Foods and Beverages with Lower Glucose Responses. Nutrients 2019;11(5):1172.RytzAAdelineDKAet alPredicting Glycemic Index and Glycemic Load from Macronutrients to Accelerate Development of Foods and Beverages with Lower Glucose ResponsesNutrients2019115117210.3390/nu11051172656623531130625Search in Google Scholar

Burke LM, Deakin V. Clinical Sports Nutrition (5th edition). McGraw-Hill Education 2015;13:386.BurkeLMDeakinVClinical Sports Nutrition (5th edition)McGraw-Hill Education201513386Search in Google Scholar

Wee SL, Williams C, Gray S, et al. Influence of high and low glycemic index meals on endurance running capacity. Med Sci Sports Exerc 1999;31:393–9.WeeSLWilliamsCGraySet alInfluence of high and low glycemic index meals on endurance running capacityMed Sci Sports Exerc199931393910.1097/00005768-199903000-0000710188743Search in Google Scholar

Wee SL, Williams C, Tsintzas K, et al. Ingestion of high-glycemic index meal increases muscle glycogen storage at rest but augments its utilization during subsequent exercise. J Appl Physiol 2005;99:707–14.WeeSLWilliamsCTsintzasKet alIngestion of high-glycemic index meal increases muscle glycogen storage at rest but augments its utilization during subsequent exerciseJ Appl Physiol2005997071410.1152/japplphysiol.01261.200415831796Search in Google Scholar

Febbraio MA, Keenan J, Angus DJ, et al. Preexercise carbohydrate ingestion, glucose kinetics, and muscle glycogen use: effect of the glycemic index. J Appl Physiol 2000;89:1845–51.FebbraioMAKeenanJAngusDJet alPreexercise carbohydrate ingestion, glucose kinetics, and muscle glycogen use: effect of the glycemic indexJ Appl Physiol20008918455110.1152/jappl.2000.89.5.184511053335Search in Google Scholar

Stevenson EJ, Thelwall PE, Thomas K, et al. Dietary glycemic index influences lipid oxidation but not muscle or liver glycogen oxidation during exercise. Am J Physiol Endocrinol Metab 2009;296:E1140–7.StevensonEJThelwallPEThomasKet alDietary glycemic index influences lipid oxidation but not muscle or liver glycogen oxidation during exerciseAm J Physiol Endocrinol Metab2009296E1140710.1152/ajpendo.90788.200819223653Search in Google Scholar

Carter JM, Jeukendrup AE, Jones DA. The effect of carbohydrate mouth rinse on 1-h cycle time-trial performance. Medicine and Science in Sports and Exercise 2004;36, 2107–2111.CarterJMJeukendrupAEJonesDAThe effect of carbohydrate mouth rinse on 1-h cycle time-trial performanceMedicine and Science in Sports and Exercise2004362107211110.1249/01.MSS.0000147585.65709.6F15570147Search in Google Scholar

Nichol AD, Holle MJ, An R. Glycemic impact of non-nutritive sweeteners: a systematic review and meta-analysis of randomized controlled trials. Eur J Clin Nutr 2018;72,796–804.NicholADHolleMJAnRGlycemic impact of non-nutritive sweeteners: a systematic review and meta-analysis of randomized controlled trialsEur J Clin Nutr20187279680410.1038/s41430-018-0170-629760482Search in Google Scholar

Volpe SL. Glycemic Index and Athletic Performance. ACSM’s Health & Fitness Journal 2011;15(1):32-33.VolpeSLGlycemic Index and Athletic PerformanceACSM’s Health & Fitness Journal2011151323310.1249/FIT.0b013e318201cfb7Search in Google Scholar

Tarnopolsky MA. Females and males: Should nutritional recommendations be gender specific? Schweiz Z Med Traumatol 2003;51(1):39–46.TarnopolskyMAFemales and males: Should nutritional recommendations be gender specific?Schweiz Z Med Traumatol20035113946Search in Google Scholar

Wismann J, Willoughby D. Gender Differences in Carbohydrate Metabolism and Carbohydrate Loading. J Int Soc Sports Nutr 2006;3,28.WismannJWilloughbyDGender Differences in Carbohydrate Metabolism and Carbohydrate LoadingJ Int Soc Sports Nutr200632810.1186/1550-2783-3-1-28212915418500960Search in Google Scholar

Walker JL, Heigenhauser GJ, Hultman E, et al. Dietary carbohydrate, muscle glycogen content, and endurance performance in well-trained women. J Appl Physiol 2000;88:2151–8.WalkerJLHeigenhauserGJHultmanEet alDietary carbohydrate, muscle glycogen content, and endurance performance in well-trained womenJ Appl Physiol2000882151810.1152/jappl.2000.88.6.215110846030Search in Google Scholar

Horton TJ, Dow S, Armstrong M, Donahoo WT. Greater systemic lipolysis in women compared with men during moderate-dose infusion of epinephrine and/or norepinephrine. J Appl Physiol 2009;107(1):200-210.HortonTJDowSArmstrongMDonahooWTGreater systemic lipolysis in women compared with men during moderate-dose infusion of epinephrine and/or norepinephrineJ Appl Physiol2009107120021010.1152/japplphysiol.90812.2008271179019407251Search in Google Scholar

Romijn JA, Coyle EF, Sidossis LS, et al. Substrate metabolism during different exercise intensities in endurance-trained women. J Appl Physiol 2000;88:1707–14.RomijnJACoyleEFSidossisLSet alSubstrate metabolism during different exercise intensities in endurance-trained womenJ Appl Physiol20008817071410.1152/jappl.2000.88.5.170710797133Search in Google Scholar

McLay RT, Thomson CD, Williams SM, et al. Carbohydrate Loading and Female Endurance Athletes: Effect of Menstrual-Cycle Phase. International Journal of Sport Nutrition and Exercise Metabolism 2007;17:189-205.McLayRTThomsonCDWilliamsSMet alCarbohydrate Loading and Female Endurance Athletes: Effect of Menstrual-Cycle PhaseInternational Journal of Sport Nutrition and Exercise Metabolism20071718920510.1123/ijsnem.17.2.18917507743Search in Google Scholar

Carter SL, Rennie CD, Hamilton SJ, et al. Changes in skeletal muscle in males and females following endurance training. Can J Physiol Pharmacol 2001;79:386–92.CarterSLRennieCDHamiltonSJet alChanges in skeletal muscle in males and females following endurance trainingCan J Physiol Pharmacol2001793869210.1139/y01-008Search in Google Scholar

Tarnopolsky MA. Sex differences in exercise metabolism and the role of 17-beta estradiol. Med Sci Sports Exerc 2008;40(4):648-54.TarnopolskyMASex differences in exercise metabolism and the role of 17-beta estradiolMed Sci Sports Exerc20084046485410.1249/MSS.0b013e31816212ff18317381Search in Google Scholar

Campbell SE, Febbraio MA. Effect of ovarian hormones on mitochondrial enzyme activity in the fat oxidation pathway of skeletal muscle. Am J Physiol Endocrinol Metab 2001,281:E803–8.CampbellSEFebbraioMAEffect of ovarian hormones on mitochondrial enzyme activity in the fat oxidation pathway of skeletal muscleAm J Physiol Endocrinol Metab2001281E803810.1152/ajpendo.2001.281.4.E80311551858Search in Google Scholar

Chung ST, Ha J, Onuzuruike AU, Kasturi K, et al. Time to glucose peak during an oral glucose tolerance test identifies prediabetes risk. Clinical endocrinology 2017;87(5):484–491.ChungSTHaJOnuzuruikeAUKasturiKet alTime to glucose peak during an oral glucose tolerance test identifies prediabetes riskClinical endocrinology201787548449110.1111/cen.13416565825128681942Search in Google Scholar

Uth N et al. Estimation of VO2 max from the ratio between Hrmax and Hrrest - the Heart Rate Ratio Method. Eur J Appl Physiol 2004;91(1):111-115.UthNet alEstimation of VO2 max from the ratio between Hrmax and Hrrest - the Heart Rate Ratio MethodEur J Appl Physiol200491111111510.1007/s00421-003-0988-y14624296Search in Google Scholar

Swain et al. Target HR for the development of CV fitness. Medicine & Science in Sports & Exercise 1994;26 (1):112-116.Swain et alTarget HR for the development of CV fitnessMedicine & Science in Sports & Exercise199426111211610.1249/00005768-199401000-00019Search in Google Scholar

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