Low-Carbohydrate Training Increases Protein Requirements of Endurance Athletes

被引:25
作者
Gillen, Jenna B. [1 ]
West, Daniel W. D. [1 ]
Williamson, Eric P. [1 ]
Fung, Hugo J. W. [1 ]
Moore, Daniel R. [1 ]
机构
[1] Univ Toronto, Fac Kinesiol & Phys Educ, 100 Devonshire Pl, Toronto, ON M5S 2C9, Canada
关键词
AEROBIC EXERCISE; DIETARY PROTEIN; CARBOHYDRATE AVAILABILITY; EXERCISE RECOVERY; HIGH-INTENSITY INTERVAL; AMINO-ACID OXIDATION; SKELETAL-MUSCLE; DIETARY-PROTEIN; EXERCISE; GLYCOGEN; AVAILABILITY; PERFORMANCE; METABOLISM; ADAPTATION;
D O I
10.1249/MSS.0000000000002036
中图分类号
G8 [体育];
学科分类号
04 ; 0403 ;
摘要
Introduction Training with low-carbohydrate (CHO) availability enhances markers of aerobic adaptation and has become popular to periodize throughout an endurance-training program. However, exercise-induced amino acid oxidation is increased with low muscle glycogen, which may limit substrate availability for postexercise protein synthesis. We aimed to determine the impact of training with low-CHO availability on estimates of dietary protein requirements. Methods Eight endurance-trained males (27 +/- 4 yr, 75 +/- 10 kg, 67 +/- 10 mL center dot kg body mass(-1)center dot min(-1)) completed two trials matched for energy and macronutrient composition but with differing CHO periodization. In the low-CHO availability trial (LOW), participants consumed 7.8 g CHO-1 center dot kg(-1) before evening high-intensity interval training (10 x 5 min at 10-km race pace, 1 min rest) and subsequently withheld CHO postexercise (0.2 g center dot kg(-1)). In the high-CHO availability trial (HIGH), participants consumed 3 g CHO center dot kg(-1) during the day before high-intensity interval training, and consumed 5 g CHO center dot kg(-1) that evening to promote muscle glycogen resynthesis. A 10-km run (similar to 80% HRmax) was performed the following morning, fasted (LOW) or 1 h after consuming 1.2 g CHO center dot kg(-1) (HIGH). Whole-body phenylalanine flux and oxidation were determined over 8 h of recovery via oral [C-13]phenylalanine ingestion, according to standard indicator amino acid oxidation methodology, while consuming sufficient energy, 7.8 g CHO center dot kg(-1)center dot d(-1), and suboptimal protein (0.93 g center dot kg(-1)center dot d(-1)). Results Fat oxidation (indirect calorimetry) during the 10-km run was higher in LOW compared with HIGH (0.99 +/- 0.35 g center dot min(-1) vs 0.60 +/- 0.26 g center dot min(-1), P < 0.05). phenylalanine flux during recovery was not different between trials (P > 0.05) whereas phenylalanine oxidation (reciprocal of protein synthesis) was higher in LOW compared with HIGH (8.8 +/- 2.7 mu mol center dot kg(-1)center dot h(-1) vs 7.9 +/- 2.4 mu mol center dot kg(-1)center dot h(-1), P < 0.05), suggesting a greater amino acid requirement to support rates of whole-body protein synthesis. Conclusions Our findings suggest that performing endurance exercise with low-CHO availability increases protein requirements of endurance athletes.
引用
收藏
页码:2294 / 2301
页数:8
相关论文
共 42 条
[1]   Matched work high-intensity interval and continuous running induce similar increases in PGC-1α mRNA, AMPK, p38, and p53 phosphorylation in human skeletal muscle [J].
Bartlett, Jonathan D. ;
Joo, Chang Hwa ;
Jeong, Tae-Seok ;
Louhelainen, Jari ;
Cochran, Andrew J. ;
Gibala, Martin J. ;
Gregson, Warren ;
Close, Graeme L. ;
Drust, Barry ;
Morton, James P. .
JOURNAL OF APPLIED PHYSIOLOGY, 2012, 112 (07) :1135-1143
[2]  
Benardot D, 2016, MED SCI SPORT EXER, V48, P543
[3]   Effect of muscle glycogen on glucose, lactate and amino acid metabolism during exercise and recovery in human subjects [J].
Blomstrand, E ;
Saltin, B .
JOURNAL OF PHYSIOLOGY-LONDON, 1999, 514 (01) :293-302
[4]   Modulation of whole body protein metabolism, during and, after exercise, by variation of dietary protein [J].
Bowtell, JL ;
Leese, GP ;
Smith, K ;
Watt, PW ;
Nevill, A ;
Rooyackers, O ;
Wagenmakers, AJM ;
Rennie, MJ .
JOURNAL OF APPLIED PHYSIOLOGY, 1998, 85 (05) :1744-1752
[5]   The influence of carbohydrate-protein co-ingestion following endurance exercise on myofibrillar and mitochondrial protein synthesis [J].
Breen, Leigh ;
Philp, Andrew ;
Witard, Oliver C. ;
Jackman, Sarah R. ;
Selby, Anna ;
Smith, Ken ;
Baar, Keith ;
Tipton, Kevin D. .
JOURNAL OF PHYSIOLOGY-LONDON, 2011, 589 (16) :4011-4025
[6]   Food-First Approach to Enhance the Regulation of Post-exercise Skeletal Muscle Protein Synthesis and Remodeling [J].
Burd, Nicholas A. ;
Beals, Joseph W. ;
Martinez, Isabel G. ;
Salvador, Amadeo F. ;
Skinner, Sarah K. .
SPORTS MEDICINE, 2019, 49 (Suppl 1) :S59-S68
[7]   Fueling strategies to optimize performance: training high or training low? [J].
Burke, L. M. .
SCANDINAVIAN JOURNAL OF MEDICINE & SCIENCE IN SPORTS, 2010, 20 :48-58
[8]   Manipulating Carbohydrate Availability Between Twice-Daily Sessions of High-Intensity Interval Training Over 2 Weeks Improves Time-Trial Performance [J].
Cochran, Andrew J. R. ;
Myslik, Frank ;
MacInnis, Martin J. ;
Percival, Michael E. ;
Bishop, David ;
Tarnopolsky, Mark A. ;
Gibala, Martin J. .
INTERNATIONAL JOURNAL OF SPORT NUTRITION AND EXERCISE METABOLISM, 2015, 25 (05) :463-470
[9]   GLYCOGEN DEPLETION PATTERN IN HUMAN MUSCLE FIBERS DURING DISTANCE RUNNING [J].
COSTILL, DL ;
GOLLNICK, PD ;
JANSSON, ED ;
SALTIN, B ;
STEIN, EM .
ACTA PHYSIOLOGICA SCANDINAVICA, 1973, 89 (03) :374-383
[10]   Indicator amino acid oxidation: Concept and application [J].
Elango, Rajavel ;
Ball, Ronald O. ;
Pencharz, Paul B. .
JOURNAL OF NUTRITION, 2008, 138 (02) :243-246