Carbohydrate dose influences liver and muscle glycogen oxidation and performance during prolonged exercise
- PMID: 29333721
- PMCID: PMC5789655
- DOI: 10.14814/phy2.13555
Carbohydrate dose influences liver and muscle glycogen oxidation and performance during prolonged exercise
Abstract
This study investigated the effect of carbohydrate (CHO) dose and composition on fuel selection during exercise, specifically exogenous and endogenous (liver and muscle) CHO oxidation. Ten trained males cycled in a double-blind randomized order on 5 occasions at 77% V˙O2max for 2 h, followed by a 30-min time-trial (TT) while ingesting either 60 g·h-1 (LG) or 75 g·h-113 C-glucose (HG), 90 g·h-1 (LGF) or 112.5 g·h-113 C-glucose-13 C-fructose ([2:1] HGF) or placebo. CHO doses met or exceed reported intestinal transporter saturation for glucose and fructose. Indirect calorimetry and stable mass isotope [13 C] tracer techniques were utilized to determine fuel use. TT performance was 93% "likely/probable" to be improved with LGF compared with the other CHO doses. Exogenous CHO oxidation was higher for LGF and HGF compared with LG and HG (ES > 1.34, P < 0.01), with the relative contribution of LGF (24.5 ± 5.3%) moderately higher than HGF (20.6 ± 6.2%, ES = 0.68). Increasing CHO dose beyond intestinal saturation increased absolute (29.2 ± 28.6 g·h-1 , ES = 1.28, P = 0.06) and relative muscle glycogen utilization (9.2 ± 6.9%, ES = 1.68, P = 0.014) for glucose-fructose ingestion. Absolute muscle glycogen oxidation between LG and HG was not significantly different, but was moderately higher for HG (ES = 0.60). Liver glycogen oxidation was not significantly different between conditions, but absolute and relative contributions were moderately attenuated for LGF (19.3 ± 9.4 g·h-1 , 6.8 ± 3.1%) compared with HGF (30.5 ± 17.7 g·h-1 , 10.1 ± 4.0%, ES = 0.79 & 0.98). Total fat oxidation was suppressed in HGF compared with all other CHO conditions (ES > 0.90, P = 0.024-0.17). In conclusion, there was no linear dose response for CHO ingestion, with 90 g·h-1 of glucose-fructose being optimal in terms of TT performance and fuel selection.
Keywords: Carbohydrate ingestion; exercise; metabolism; muscle glycogen; stable isotope.
© 2018 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society.
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References
-
- Adopo, E. , Peronnet F., Massicotte D., Brisson G., and Hillaire‐Marcel C.. 1994. Respective oxidation of exogenous glucose and fructose given in the same drink during exercise. J. Appl. Physiol. 76:1014–1019. - PubMed
-
- Arkinstall, M. , Bruce C., Nikolopoulos V., Garnham A., and Hawley J. A.. 2001. Effect of carbohydrate ingestion on metabolism during running and cycling. J. Appl. Physiol. 91:2125–2134. - PubMed
-
- Baur, D. A. , Schroer A. B., Luden N. D., Womack C. J., Smyth S. A., and Saunders M. J.. 2014. Glucose‐fructose enhances performance versus isocaloric, but not moderate, glucose. Med. Sci. Sports Exerc. 46:1778–1786. - PubMed
-
- Brooks, G. A. 1986. Lactate production under fully aerobic conditions: the lactate shuttle during rest and exercise. Fed. Proc. 45:2924–2929. - PubMed
-
- Casey, A. , Mann R., Banister K., Fox J., Morris P., Macdonald I., et al. 2000. Effect of carbohydrate ingestion on glycogen resynthesis in human liver and skeletal muscle, measured by (13)C MRS. Am. J. Physiol. Endocrinol. Metab. 278:E65–E75. - PubMed
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