| Literature DB >> 29444266 |
Bob Murray1, Christine Rosenbloom2.
Abstract
The ability of athletes to train day after day depends in large part on adequate restoration of muscle glycogen stores, a process that requires the consumption of sufficient dietary carbohydrates and ample time. Providing effective guidance to athletes and others wishing to enhance training adaptations and improve performance requires an understanding of the normal variations in muscle glycogen content in response to training and diet; the time required for adequate restoration of glycogen stores; the influence of the amount, type, and timing of carbohydrate intake on glycogen resynthesis; and the impact of other nutrients on glycogenesis. This review highlights the practical implications of the latest research related to glycogen metabolism in physically active individuals to help sports dietitians, coaches, personal trainers, and other sports health professionals gain a fundamental understanding of glycogen metabolism, as well as related practical applications for enhancing training adaptations and preparing for competition.Entities:
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Year: 2018 PMID: 29444266 PMCID: PMC6019055 DOI: 10.1093/nutrit/nuy001
Source DB: PubMed Journal: Nutr Rev ISSN: 0029-6643 Impact factor: 7.110
The glycogen content of liver and muscle
| Tissue | Average (g) | Normal range (g) |
|---|---|---|
| Muscle | 500 | 300–700 |
| Liver | 80 | 0–160 |
Adapted from Hargreaves (2012).
Figure 1Depiction of glycogen, a large spherical particle formed by linking glucose molecules into strands and branches.
Figure 2The intracellular locations of skeletal muscle glycogen. Image © Human Kinetics. Used with permission. Values for glycogen distribution are from Schweitzer et al (2017).
Dietary and exercise interventions that influence muscle glycogen synthesis
| Intervention | Response | Reference |
|---|---|---|
| Regular training + diet high in CHO content ( | Supercompensated muscle glycogen stores compared with the start of training and greater than if a low-CHO diet is consumed | Ahlborg and Brohult (1967) |
| Classic glycogen loading: 3 d of hard training on a low-CHO diet (<5 g/kg BW/d) followed by 3 d of tapered training on a high-CHO diet | Supercompensated muscle glycogen stores compared with before the intervention but training is very difficult both physically and psychologically during the low-CHO phase | Bergstrom et al. (1967) |
| Modified glycogen loading: 3-d taper on a high-CHO diet with 24-h rest prior to competitions | Supercompensated muscle glycogen stores similar to the classic loading regimen | Sherman et al. (1981) |
| Train low, compete high: purposefully reduce daily CHO intake or train after an overnight fast or withhold CHO intake during and for 2 h following a hard training session to promote adaptations that result in glycogen supercompensation | Training low reduces the capacity to train hard and makes training psychologically challenging. No clear evidence of additional benefits to glycogen stores or performance | Bartlett et al. (2015) |
| Train high, sleep low: train with high CHO availability in the evening, no CHO replacement prior to sleep, train with low CHO availability in the morning | Evidence of improved performance compared with consuming a consistently high-CHO diet during training. Performance benefits could be due to higher muscle glycogen | Hawley (2014) |
| Protein supplementation | When dietary CHO intake is not adequate, consuming 0.3–0.4 g protein/kg BW has been shown to augment glycogen synthesis | Betts and Williams (2010) |
| Creatine loading | Some studies found enhanced muscle glycogen storage with creatine loading, whereas other studies found no effect | Roberts et al. (2016) |
| Fat loading, train low | Bartlett et al. (2015) |
Abbreviations: BW, body weight; CHO, carbohydrate; VO2max, maximal oxygen consumption.
Figure 3A simplified overview of glycogen metabolism at rest and during exercise. The sarcolemma separates the muscle cell interior from the interstitial fluid that surrounds the cell. At rest (left side), the consumption of carbohydrate stimulates the release of insulin from the pancreas. Insulin molecules bind to insulin receptors embedded in the sarcolemma. That binding sparks a cascade of intracellular responses that result in the movement of GLUT4 glucose transporters from the interior of the muscle cell into the sarcolemma, allowing for glucose to move into the cell. Once inside the muscle cell, glucose molecules are readied for inclusion into glycogen. Glycogenin is an enzyme that forms the center of glycogen particles, allowing for the initial formation of glycogen strands. During exercise (right side), GLUT4 transporters move into the sarcolemma without the assistance of insulin, aiding in glucose uptake into the cell. Simultaneously, glycogen degradation increases in response to changes in the concentration of metabolites inside the cell. The glucose molecules from the blood and those released from glycogen are oxidized to produce the adenosine triphosphate (ATP) molecules required to sustain muscle contraction.
Figure 4Muscle glycogen levels can vary widely during training, only reaching supercompensated levels after a few days of rest and light training. In this example, muscle glycogen levels decline during training sessions and are partially restored during subsequent rest and after adequate carbohydrate intake. During hard 2-a-day training sessions (day 3), glycogen concentration can be lowered to the point at which contractile dysfunction (fatigue) occurs. Athletes typically train with muscle glycogen stores that are adequate to meet the demands of training (eg, between 75 and 150 mmol/kg wet weight) even though those stores might be considered suboptimal. Illustration based on data from Sherman and Wimer (1991).
Recommendations for daily carbohydrate intake for athletes involved in repeated days of strenuous, prolonged physical activity and training
| Exercise intensity | Description | Dietary carbohydrate | Comments |
|---|---|---|---|
| Low | Easy activity such as yoga, tai chi, walking, or any exercise done at a light effort (can easily talk or sing during the activity) | 3–5 g/kg BW/d | Normal dietary intake is usually sufficient to restore muscle glycogen content |
| Moderate | One hour or more of activity such as walking, jogging, swimming, bicycling at a modest effort (can carry on a conversation without problem, but cannot sing) | 5–7 g/kg BW/d | A diet in which at least 50% of the energy (calories) comes from carbohydrate food is usually sufficient to restore muscle glycogen content |
| High | One hour or more hard exercise such as interval training, running, swimming, bicycling at a modest effort (can carry on only very brief conversations) | 6–10 g/kg BW/d | Postexercise carbohydrate/protein intake, with high-carbohydrate meals and snacks, is needed to fully restore muscle glycogen within 24–36 h |
| Very-high | Very hard exercise for an hour or more or very prolonged exercise such as interval training, ice hockey, soccer, basketball, running, swimming, bicycling at an intense effort (cannot speak during the effort) | 8–12 g/kg BW/d | Postexercise carbohydrate/protein intake, with high-carbohydrate meals and snacks, is needed to fully restore muscle glycogen within 24–36 h |
Adapted from Thomas et al. (2016) and Burke et al. (2017).
Abbreviations: BW, body weight.
High-quality carbohydrate foods
| Food | Portion | Energy | CHO (g) | PRO (g) | Fat (g) | Fiber (g) | Calcium (mg) | Vitamin C (mg) | Iron (mg) |
|---|---|---|---|---|---|---|---|---|---|
| Baked potato with skin | Medium, 2¼–3¼″ diameter | 161 | 36 | 4.3 | 0.2 | 3.8 | 26 | 16 | 1.9 |
| Black beans, canned, drained | 1 cup | 218 | 40 | 14.7 | 0.7 | 16.6 | 84 | 6.5 | 4.5 |
| Enriched penne pasta, boiled | 1 cup | 169 | 33 | 6.2 | 1.0 | 1.9 | 7 | 0 | 1.4 |
| Enriched wheat bran cereal with raisins | 1 cup | 191 | 46 | 4.5 | 0.9 | 8.1 | 26 | 0.5 | 10.8 |
| Whole wheat bread | 1 slice | 81 | 14 | 4 | 1.1 | 1.9 | 52 | 0 | 0.8 |
Data are from the US Department of Agriculture.
Abbreviations: CHO, carbohydrate; PRO, protein.
Example of eating program for a 70-kilogram athlete training for an ultra-endurance event, requiring 8–12 grams of carbohydrate per kilogram of body weight per day
| Usual intake | Total grams of carbohydrate | Additional foods to boost carbohydrate | Total grams of carbohydrate |
|---|---|---|---|
| Breakfast | |||
| Fast-food egg and cheese biscuit (32 g) and coffee (0 g) | 32 | 2 hash brown potato patties (30 g) 16 oz of orange juice (44 g) Café latte (18 g) | 124 |
| Morning snack | |||
½ cup of peanuts (12 g) 8 oz of apple juice (28 g) | 40 | 8 oz of Greek strawberry yogurt (27 g) ½ cup of granola (38 g) 16 oz of cranberry apple juice (68 g) | 145 |
| Lunch | |||
Grilled chicken salad with balsamic vinaigrette dressing Water | 10 | Salad additions: ¼ cup of croutons (13 g) ½ cup of garbanzo beans (29 g) ½ cup of bell peppers (4 g) 1 ciabatta roll (28 g) 8 oz of berry fruit smoothie (28 g) | 112 |
| During workouts | |||
Water (0) 8 oz of sports drink (15 g) | 15 | 16-oz carbohydrate energy drink (30 g) | 45 g |
| Post workout | |||
16 oz of sports drink (30 g) 8-oz whey protein mixed with water (8 g) | 38 | 12 oz of endurance formula sports drink (22 g) 16-oz whey protein mixed with 8 oz of milk and 8 oz of vanilla yogurt with 2 tablespoons of honey (78 g) | 100 g |
| Dinner | |||
6 oz of beef flank steak (0 g) ½ cup of brown rice (25 g) 1 cup of green beans (10 g) 1 cup of broccoli (11 g) 1 cup of mixed fruit salad (30 g) Water | 76 | 6-oz flank steak sandwich on large Kaiser roll (52 g) Large baked potato with ½ cup of plain yogurt (76 g) 1 cup of green peas (25 g) 1 cup of broccoli (11) Add ½ cup of fruit-flavored yogurt to mixed fruit salad (44 g) | 198 |
| Bedtime snack | |||
3 cups popcorn (20 g) Diet cola (0 g) | 20 | 1 cup of raisin bran cereal (45 g) 1 cup of milk (12 g) 1 medium banana (27 g) | 84 |
| Total | 231 g or 3.3 g/kg BW | Total | 808 g or 11.5 g/kg BW |
Data from National Nutrient Database for Standard Reference (Release September 25, 2015).
Abbreviations: BW, body weight.