Skip to main content
Top
Published in: Sports Medicine 1/2014

Open Access 01-05-2014 | Review Article

Sleep in Elite Athletes and Nutritional Interventions to Enhance Sleep

Author: Shona L. Halson

Published in: Sports Medicine | Special Issue 1/2014

Login to get access

Abstract

Sleep has numerous important physiological and cognitive functions that may be particularly important to elite athletes. Recent evidence, as well as anecdotal information, suggests that athletes may experience a reduced quality and/or quantity of sleep. Sleep deprivation can have significant effects on athletic performance, especially submaximal, prolonged exercise. Compromised sleep may also influence learning, memory, cognition, pain perception, immunity and inflammation. Furthermore, changes in glucose metabolism and neuroendocrine function as a result of chronic, partial sleep deprivation may result in alterations in carbohydrate metabolism, appetite, food intake and protein synthesis. These factors can ultimately have a negative influence on an athlete’s nutritional, metabolic and endocrine status and hence potentially reduce athletic performance. Research has identified a number of neurotransmitters associated with the sleep–wake cycle. These include serotonin, gamma-aminobutyric acid, orexin, melanin-concentrating hormone, cholinergic, galanin, noradrenaline, and histamine. Therefore, nutritional interventions that may act on these neurotransmitters in the brain may also influence sleep. Carbohydrate, tryptophan, valerian, melatonin and other nutritional interventions have been investigated as possible sleep inducers and represent promising potential interventions. In this review, the factors influencing sleep quality and quantity in athletic populations are examined and the potential impact of nutritional interventions is considered. While there is some research investigating the effects of nutritional interventions on sleep, future research may highlight the importance of nutritional and dietary interventions to enhance sleep.
Literature
2.
go back to reference Dattilo M, Antunes HK, Medeiros A, et al. Sleep and muscle recovery: endocrinological and molecular basis for a new and promising hypothesis. Med Hyp. 2011;77(2):220–2.CrossRef Dattilo M, Antunes HK, Medeiros A, et al. Sleep and muscle recovery: endocrinological and molecular basis for a new and promising hypothesis. Med Hyp. 2011;77(2):220–2.CrossRef
3.
go back to reference Rial RV, Nicolau MC, Gamundi A, et al. The trivial function of sleep. Sleep Med Rev. 2007;11(4):311–25.PubMedCrossRef Rial RV, Nicolau MC, Gamundi A, et al. The trivial function of sleep. Sleep Med Rev. 2007;11(4):311–25.PubMedCrossRef
4.
go back to reference Belenky G, Wesensten NJ, Thorne DR, et al. Patterns of performance degradation and restoration during sleep restriction and subsequent recovery: a sleep dose–response study. J Sleep Res. 2003;12(1):1–12.PubMedCrossRef Belenky G, Wesensten NJ, Thorne DR, et al. Patterns of performance degradation and restoration during sleep restriction and subsequent recovery: a sleep dose–response study. J Sleep Res. 2003;12(1):1–12.PubMedCrossRef
5.
go back to reference Spiegel K, Leproult R, Van Cauter E. Impact of sleep debt on metabolic and endocrine function. Lancet. 1999;354(9188):1435–9.PubMedCrossRef Spiegel K, Leproult R, Van Cauter E. Impact of sleep debt on metabolic and endocrine function. Lancet. 1999;354(9188):1435–9.PubMedCrossRef
6.
go back to reference Spiegel K, Tasali E, Penev P, et al. Brief communication: sleep curtailment in healthy young men is associated with decreased leptin levels, elevated ghrelin levels, and increased hunger and appetite. Ann Intern Med. 2004;141(11):846–50.PubMedCrossRef Spiegel K, Tasali E, Penev P, et al. Brief communication: sleep curtailment in healthy young men is associated with decreased leptin levels, elevated ghrelin levels, and increased hunger and appetite. Ann Intern Med. 2004;141(11):846–50.PubMedCrossRef
7.
go back to reference Krueger JM, Majde JA, Rector DM. Cytokines in immune function and sleep regulation. Handbook Clin Neurol. 2011;98:229–40.CrossRef Krueger JM, Majde JA, Rector DM. Cytokines in immune function and sleep regulation. Handbook Clin Neurol. 2011;98:229–40.CrossRef
8.
go back to reference Van Dongen HP, Maislin G, Mullington JM, et al. The cumulative cost of additional wakefulness: dose–response effects on neurobehavioral functions and sleep physiology from chronic sleep restriction and total sleep deprivation. Sleep. 2003;26(2):117–26.PubMed Van Dongen HP, Maislin G, Mullington JM, et al. The cumulative cost of additional wakefulness: dose–response effects on neurobehavioral functions and sleep physiology from chronic sleep restriction and total sleep deprivation. Sleep. 2003;26(2):117–26.PubMed
9.
go back to reference Reilly T, Edwards B. Altered sleep–wake cycles and physical performance in athletes. Physiol Behav. 2007;90(2–3):274–84.PubMedCrossRef Reilly T, Edwards B. Altered sleep–wake cycles and physical performance in athletes. Physiol Behav. 2007;90(2–3):274–84.PubMedCrossRef
10.
go back to reference Robson-Ansley PJ, Gleeson M, Ansley L. Fatigue management in the preparation of Olympic athletes. J Sports Sci. 2009;27(13):1409–20.PubMedCrossRef Robson-Ansley PJ, Gleeson M, Ansley L. Fatigue management in the preparation of Olympic athletes. J Sports Sci. 2009;27(13):1409–20.PubMedCrossRef
11.
go back to reference Samuels C. Sleep, recovery, and performance: the new frontier in high-performance athletics. Neurol Clin. 2008;26(1):169–80.PubMedCrossRef Samuels C. Sleep, recovery, and performance: the new frontier in high-performance athletics. Neurol Clin. 2008;26(1):169–80.PubMedCrossRef
12.
go back to reference Carskadon MA, Dement WC. Normal human sleep: an overview. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier; 2011. p. 16–26.CrossRef Carskadon MA, Dement WC. Normal human sleep: an overview. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier; 2011. p. 16–26.CrossRef
13.
go back to reference Shapiro CM, Bortz R, Mitchell D, et al. Slow-wave sleep: a recovery period after exercise. Science. 1981;214(4526):1253–4.PubMedCrossRef Shapiro CM, Bortz R, Mitchell D, et al. Slow-wave sleep: a recovery period after exercise. Science. 1981;214(4526):1253–4.PubMedCrossRef
14.
go back to reference Dijk DJ. Slow-wave sleep deficiency and enhancement: implications for insomnia and its management. World J Biol Psychiatry. 2010;11(Suppl. 1):22–8.PubMedCrossRef Dijk DJ. Slow-wave sleep deficiency and enhancement: implications for insomnia and its management. World J Biol Psychiatry. 2010;11(Suppl. 1):22–8.PubMedCrossRef
15.
go back to reference National Sleep Foundation. Sleep in America poll. Washington, DC: National Sleep Foundation; 2006. National Sleep Foundation. Sleep in America poll. Washington, DC: National Sleep Foundation; 2006.
16.
go back to reference Leeder J, Glaister M, Pizzoferro K, et al. Sleep duration and quality in elite athletes measured using wristwatch actigraphy. J Sports Sci. 2012;30(6):541–5.PubMedCrossRef Leeder J, Glaister M, Pizzoferro K, et al. Sleep duration and quality in elite athletes measured using wristwatch actigraphy. J Sports Sci. 2012;30(6):541–5.PubMedCrossRef
17.
go back to reference Erlacher D, Ehrlenspiel F, Adegbesan OA, et al. Sleep habits in German athletes before important competitions or games. J Sports Sci. 2011;29(8):859–66.PubMedCrossRef Erlacher D, Ehrlenspiel F, Adegbesan OA, et al. Sleep habits in German athletes before important competitions or games. J Sports Sci. 2011;29(8):859–66.PubMedCrossRef
18.
go back to reference Fallon KE. Blood tests in tired elite athletes: expectations of athletes, coaches and sport science/sports medicine staff. Br J Sports Med. 2007;41(1):41–4.PubMedCentralPubMed Fallon KE. Blood tests in tired elite athletes: expectations of athletes, coaches and sport science/sports medicine staff. Br J Sports Med. 2007;41(1):41–4.PubMedCentralPubMed
19.
go back to reference Souissi N, Sesboue B, Gauthier A, et al. Effects of one night’s sleep deprivation on anaerobic performance the following day. Eur J Appl Physiol. 2003;89(3–4):359–66.PubMedCrossRef Souissi N, Sesboue B, Gauthier A, et al. Effects of one night’s sleep deprivation on anaerobic performance the following day. Eur J Appl Physiol. 2003;89(3–4):359–66.PubMedCrossRef
20.
go back to reference Bulbulian R, Heaney JH, Leake CN, et al. The effect of sleep deprivation and exercise load on isokinetic leg strength and endurance. Eur J Appl Physiol. 1996;73:273–7.CrossRef Bulbulian R, Heaney JH, Leake CN, et al. The effect of sleep deprivation and exercise load on isokinetic leg strength and endurance. Eur J Appl Physiol. 1996;73:273–7.CrossRef
21.
go back to reference Takeuchi L, Davis GM, Plyley M, et al. Sleep deprivation, chronic exercise and muscular performance. Ergonomics. 1985;28(3):591–601.PubMedCrossRef Takeuchi L, Davis GM, Plyley M, et al. Sleep deprivation, chronic exercise and muscular performance. Ergonomics. 1985;28(3):591–601.PubMedCrossRef
22.
go back to reference Blumert PA, Crum AJ, Ernsting M, et al. The acute effects of twenty-four hours of sleep loss on the performance of national-caliber male collegiate weightlifters. J Strength Cond Res. 2007;21(4):1146–54.PubMed Blumert PA, Crum AJ, Ernsting M, et al. The acute effects of twenty-four hours of sleep loss on the performance of national-caliber male collegiate weightlifters. J Strength Cond Res. 2007;21(4):1146–54.PubMed
23.
go back to reference Oliver SJ, Costa RJ, Laing SJ, et al. One night of sleep deprivation decreases treadmill endurance performance. Eur J Appl Physiol. 2009;107(2):155–61.PubMedCrossRef Oliver SJ, Costa RJ, Laing SJ, et al. One night of sleep deprivation decreases treadmill endurance performance. Eur J Appl Physiol. 2009;107(2):155–61.PubMedCrossRef
24.
go back to reference Skein M, Duffield R, Edge J, et al. Intermittent-sprint performance and muscle glycogen after 30 h of sleep deprivation. Med Sci Sports Exerc. 2011;43(7):1301–11.PubMedCrossRef Skein M, Duffield R, Edge J, et al. Intermittent-sprint performance and muscle glycogen after 30 h of sleep deprivation. Med Sci Sports Exerc. 2011;43(7):1301–11.PubMedCrossRef
25.
go back to reference Reilly T, Deykin T. Effects of partial sleep loss on subjective states, psychomotor and physical performance tests. J Hum Mov Stud. 1983;9:157–70. Reilly T, Deykin T. Effects of partial sleep loss on subjective states, psychomotor and physical performance tests. J Hum Mov Stud. 1983;9:157–70.
26.
go back to reference Reilly T, Hales A. Effects of partial sleep deprivation on performance measures in females. In: McGraw ED, editor. Contemporary ergonomics. London: Taylor and Francis; 1988. p. 509–13. Reilly T, Hales A. Effects of partial sleep deprivation on performance measures in females. In: McGraw ED, editor. Contemporary ergonomics. London: Taylor and Francis; 1988. p. 509–13.
27.
go back to reference Sinnerton S, Reilly T. Effects of sleep loss and time of day in swimmers. In: Maclaren D, Reilly T, Lees A, editors. Biomechanics and medicine in swimming: swimming science IV. London: E and F.N Spon; 1992. p. 399–405. Sinnerton S, Reilly T. Effects of sleep loss and time of day in swimmers. In: Maclaren D, Reilly T, Lees A, editors. Biomechanics and medicine in swimming: swimming science IV. London: E and F.N Spon; 1992. p. 399–405.
28.
go back to reference Reilly T, Piercy M. The effect of partial sleep deprivation on weight-lifting performance. Ergonomics. 1994;37(1):107–15.PubMedCrossRef Reilly T, Piercy M. The effect of partial sleep deprivation on weight-lifting performance. Ergonomics. 1994;37(1):107–15.PubMedCrossRef
29.
go back to reference Mah CD, Mah KE, Kezirian EJ, et al. The effects of sleep extension on the athletic performance of collegiate basketball players. Sleep. 2011;34(7):943–50.PubMedCentralPubMed Mah CD, Mah KE, Kezirian EJ, et al. The effects of sleep extension on the athletic performance of collegiate basketball players. Sleep. 2011;34(7):943–50.PubMedCentralPubMed
30.
go back to reference Mah C (eds) Extended sleep and the effects on mood and athletic performance in collegiate swimmers. Annual Meeting of the Associated Professional Sleep Societies; 9 Jun 2008; Baltimore (MD). Mah C (eds) Extended sleep and the effects on mood and athletic performance in collegiate swimmers. Annual Meeting of the Associated Professional Sleep Societies; 9 Jun 2008; Baltimore (MD).
31.
go back to reference Waterhouse J, Atkinson G, Edwards B, et al. The role of a short post-lunch nap in improving cognitive, motor, and sprint performance in participants with partial sleep deprivation. J Sports Sci. 2007;25(14):1557–66.PubMedCrossRef Waterhouse J, Atkinson G, Edwards B, et al. The role of a short post-lunch nap in improving cognitive, motor, and sprint performance in participants with partial sleep deprivation. J Sports Sci. 2007;25(14):1557–66.PubMedCrossRef
32.
go back to reference Postolache TT, Oren DA. Circadian phase shifting, alerting, and antidepressant effects of bright light treatment. Clin Sports Med. 2005;24(2):381–413.PubMedCrossRef Postolache TT, Oren DA. Circadian phase shifting, alerting, and antidepressant effects of bright light treatment. Clin Sports Med. 2005;24(2):381–413.PubMedCrossRef
33.
go back to reference Torabi Nami M, Sadeghniaat K. Understanding the interplay between neurobiochemistry of sleep–wake systems and cognition. Webmed Central Brain. 2011;2(10):1–10. Torabi Nami M, Sadeghniaat K. Understanding the interplay between neurobiochemistry of sleep–wake systems and cognition. Webmed Central Brain. 2011;2(10):1–10.
34.
go back to reference Balkin TJ. Performance deficits during sleep loss: effects of time awake, time of day, and time on task. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier Saunders; 2011. p. 738–44.CrossRef Balkin TJ. Performance deficits during sleep loss: effects of time awake, time of day, and time on task. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier Saunders; 2011. p. 738–44.CrossRef
35.
36.
go back to reference Lautenbacher S, Kundermann B, Krieg JC. Sleep deprivation and pain perception. Sleep Med Rev. 2006;10(5):357–69.PubMedCrossRef Lautenbacher S, Kundermann B, Krieg JC. Sleep deprivation and pain perception. Sleep Med Rev. 2006;10(5):357–69.PubMedCrossRef
37.
go back to reference Bollinger T, Bollinger A, Oster H, et al. Sleep, immunity, and circadian clocks: a mechanistic model. Gerontology. 2010;56(6):574–80.PubMedCrossRef Bollinger T, Bollinger A, Oster H, et al. Sleep, immunity, and circadian clocks: a mechanistic model. Gerontology. 2010;56(6):574–80.PubMedCrossRef
38.
go back to reference Fondell E, Axelsson J, Franck K, et al. Short natural sleep is associated with higher T cell and lower NK cell activities. Brain Behav Immun. 2011;25(7):1367–75.PubMedCrossRef Fondell E, Axelsson J, Franck K, et al. Short natural sleep is associated with higher T cell and lower NK cell activities. Brain Behav Immun. 2011;25(7):1367–75.PubMedCrossRef
39.
go back to reference Faraut B, Boudjeltia KZ, Dyzma M, et al. Benefits of napping and an extended duration of recovery sleep on alertness and immune cells after acute sleep restriction. Brain Behav Immun. 2011;25(1):16–24.PubMedCrossRef Faraut B, Boudjeltia KZ, Dyzma M, et al. Benefits of napping and an extended duration of recovery sleep on alertness and immune cells after acute sleep restriction. Brain Behav Immun. 2011;25(1):16–24.PubMedCrossRef
41.
go back to reference Walsh NP, Gleeson M, Shephard RJ, et al. Position statement. Part one: immune function and exercise. Exerc Immunol Rev. 2011;17:6–63.PubMed Walsh NP, Gleeson M, Shephard RJ, et al. Position statement. Part one: immune function and exercise. Exerc Immunol Rev. 2011;17:6–63.PubMed
43.
go back to reference Spiegel K, Knutson K, Leproult R, et al. Sleep loss: a novel risk factor for insulin resistance and type 2 diabetes. J Appl Physiol. 2005;99(5):2008–19.PubMedCrossRef Spiegel K, Knutson K, Leproult R, et al. Sleep loss: a novel risk factor for insulin resistance and type 2 diabetes. J Appl Physiol. 2005;99(5):2008–19.PubMedCrossRef
44.
go back to reference Van Cauter E, Spiegel K, Tasali E, et al. Metabolic consequences of sleep and sleep loss. Sleep Med. 2008;9(Suppl. 1):S23–8.PubMedCrossRef Van Cauter E, Spiegel K, Tasali E, et al. Metabolic consequences of sleep and sleep loss. Sleep Med. 2008;9(Suppl. 1):S23–8.PubMedCrossRef
45.
go back to reference Dattilo M, Antunes HK, Medeiros A, et al. Sleep and muscle recovery: endocrinological and molecular basis for a new and promising hypothesis. Med Hypotheses. 2011;77(2):220–2.PubMedCrossRef Dattilo M, Antunes HK, Medeiros A, et al. Sleep and muscle recovery: endocrinological and molecular basis for a new and promising hypothesis. Med Hypotheses. 2011;77(2):220–2.PubMedCrossRef
46.
go back to reference Meerlo P, Sgoifo A, Suchecki D. Restricted and disrupted sleep: effects on autonomic function, neuroendocrine stress systems and stress responsivity. Sleep Med Rev. 2008;12(3):197–210.PubMedCrossRef Meerlo P, Sgoifo A, Suchecki D. Restricted and disrupted sleep: effects on autonomic function, neuroendocrine stress systems and stress responsivity. Sleep Med Rev. 2008;12(3):197–210.PubMedCrossRef
47.
go back to reference Saper CB, Scammell TE, Lu J. Hypothalamic regulation of sleep and circadian rhythms. Nature. 2005;437(7063):1257–63.PubMedCrossRef Saper CB, Scammell TE, Lu J. Hypothalamic regulation of sleep and circadian rhythms. Nature. 2005;437(7063):1257–63.PubMedCrossRef
48.
go back to reference Silber BY, Schmitt JA. Effects of tryptophan loading on human cognition, mood, and sleep. Neurosci Biobehav Rev. 2010;34(3):387–407.PubMedCrossRef Silber BY, Schmitt JA. Effects of tryptophan loading on human cognition, mood, and sleep. Neurosci Biobehav Rev. 2010;34(3):387–407.PubMedCrossRef
49.
go back to reference Grimmett A, Sillence MN. Calmatives for the excitable horse: a review of l-tryptophan. Vet J. 2005;170(1):24–32.PubMedCrossRef Grimmett A, Sillence MN. Calmatives for the excitable horse: a review of l-tryptophan. Vet J. 2005;170(1):24–32.PubMedCrossRef
50.
go back to reference Fernstrom JD, Wurtman RJ. Brain serotonin content: physiological dependence on plasma tryptophan levels. Science. 1971;173(3992):149–52.PubMedCrossRef Fernstrom JD, Wurtman RJ. Brain serotonin content: physiological dependence on plasma tryptophan levels. Science. 1971;173(3992):149–52.PubMedCrossRef
51.
go back to reference Van Cauter E, Tasali E. Endocrine physiology in relation to sleep and sleep disturbances. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier; 2011. p. 291–311.CrossRef Van Cauter E, Tasali E. Endocrine physiology in relation to sleep and sleep disturbances. In: Kryger MH, Roth T, Dement WC, editors. Principles and practice of sleep medicine. 5th ed. St. Louis: Elsevier; 2011. p. 291–311.CrossRef
52.
go back to reference Porter JM, Horne JA. Bed-time food supplements and sleep: effects of different carbohydrate levels. Electroencephalogr Clin Neurophysiol. 1981;51(4):426–33.PubMedCrossRef Porter JM, Horne JA. Bed-time food supplements and sleep: effects of different carbohydrate levels. Electroencephalogr Clin Neurophysiol. 1981;51(4):426–33.PubMedCrossRef
53.
go back to reference Orr WC, Shadid G, Harnish MJ, et al. Meal composition and its effect on postprandial sleepiness. Physiol Behav. 1997;62(4):709–12.PubMedCrossRef Orr WC, Shadid G, Harnish MJ, et al. Meal composition and its effect on postprandial sleepiness. Physiol Behav. 1997;62(4):709–12.PubMedCrossRef
54.
go back to reference Afaghi A, O’Connor H, Chow CM. High-glycemic-index carbohydrate meals shorten sleep onset. Am J Clin Nutr. 2007;85(2):426–30.PubMed Afaghi A, O’Connor H, Chow CM. High-glycemic-index carbohydrate meals shorten sleep onset. Am J Clin Nutr. 2007;85(2):426–30.PubMed
55.
go back to reference Afaghi A, O’Connor H, Chow CM. Acute effects of the very low carbohydrate diet on sleep indices. Nutr Neurosci. 2008;11(4):146–54.PubMedCrossRef Afaghi A, O’Connor H, Chow CM. Acute effects of the very low carbohydrate diet on sleep indices. Nutr Neurosci. 2008;11(4):146–54.PubMedCrossRef
56.
go back to reference Jalilolghadr S, Afaghi A, O’Connor H, et al. Effect of low and high glycaemic index drink on sleep pattern in children. J Pak Med Assoc. 2011;61(6):533–6.PubMed Jalilolghadr S, Afaghi A, O’Connor H, et al. Effect of low and high glycaemic index drink on sleep pattern in children. J Pak Med Assoc. 2011;61(6):533–6.PubMed
57.
go back to reference Hartmann MK, Crisp AH, Evans G, et al. Short-term effects of CHO, fat and protein loads on total tryptophan/tyrosine levels in plasma as related to %REM sleep. Waking Sleep. 1979;3(1):63–8. Hartmann MK, Crisp AH, Evans G, et al. Short-term effects of CHO, fat and protein loads on total tryptophan/tyrosine levels in plasma as related to %REM sleep. Waking Sleep. 1979;3(1):63–8.
58.
go back to reference Zammit GK, Kolevzon A, Fauci M, et al. Postprandial sleep in healthy men. Sleep. 1995;18(4):229–31.PubMed Zammit GK, Kolevzon A, Fauci M, et al. Postprandial sleep in healthy men. Sleep. 1995;18(4):229–31.PubMed
59.
go back to reference Kwan RM, Thomas S, Mir MA. Effects of a low carbohydrate isoenergetic diet on sleep behavior and pulmonary functions in healthy female adult humans. J Nutr. 1986;16(12):2393–402. Kwan RM, Thomas S, Mir MA. Effects of a low carbohydrate isoenergetic diet on sleep behavior and pulmonary functions in healthy female adult humans. J Nutr. 1986;16(12):2393–402.
60.
go back to reference Lacey JH, Hawkins C, Crisp AH. Effects of dietary protein on sleep EEG in normal subjects. Adv Biosci. 1978;21:245–7.PubMed Lacey JH, Hawkins C, Crisp AH. Effects of dietary protein on sleep EEG in normal subjects. Adv Biosci. 1978;21:245–7.PubMed
61.
go back to reference Lindseth G, Lindseth P, Thompson M. Nutritional effects on sleep. West J Nurs Res. 2013;35:497–513.PubMedCrossRef Lindseth G, Lindseth P, Thompson M. Nutritional effects on sleep. West J Nurs Res. 2013;35:497–513.PubMedCrossRef
62.
go back to reference Grandner MA, Kripke DF, Naidoo N, et al. Relationships among dietary nutrients and subjective sleep, objective sleep, and napping in women. Sleep Med. 2010;11(2):180–4.PubMedCentralPubMedCrossRef Grandner MA, Kripke DF, Naidoo N, et al. Relationships among dietary nutrients and subjective sleep, objective sleep, and napping in women. Sleep Med. 2010;11(2):180–4.PubMedCentralPubMedCrossRef
64.
go back to reference Buscemi N, Vandermeer B, Hooton N, et al. The efficacy and safety of exogenous melatonin for primary sleep disorders: a meta-analysis. J Gen Intern Med. 2005;20(12):1151–8.PubMedCentralPubMedCrossRef Buscemi N, Vandermeer B, Hooton N, et al. The efficacy and safety of exogenous melatonin for primary sleep disorders: a meta-analysis. J Gen Intern Med. 2005;20(12):1151–8.PubMedCentralPubMedCrossRef
65.
go back to reference Pigeon WR, Carr M, Gorman C, et al. Effects of a tart cherry juice beverage on the sleep of older adults with insomnia: a pilot study. J Med Food. 2010;13(3):579–83.PubMedCentralPubMedCrossRef Pigeon WR, Carr M, Gorman C, et al. Effects of a tart cherry juice beverage on the sleep of older adults with insomnia: a pilot study. J Med Food. 2010;13(3):579–83.PubMedCentralPubMedCrossRef
66.
go back to reference Howatson G, Bell PG, Tallent J, et al. Effect of tart cherry juice (Prunus cerasus) on melatonin levels and enhanced sleep quality. Eur J Nutr. 2011;51(8):909–16.PubMedCrossRef Howatson G, Bell PG, Tallent J, et al. Effect of tart cherry juice (Prunus cerasus) on melatonin levels and enhanced sleep quality. Eur J Nutr. 2011;51(8):909–16.PubMedCrossRef
67.
go back to reference Wheatley D. Medicinal plants for insomnia: a review of their pharmacology, efficacy and tolerability. J Psychopharmacol. 2005;19(4):414–21.PubMedCrossRef Wheatley D. Medicinal plants for insomnia: a review of their pharmacology, efficacy and tolerability. J Psychopharmacol. 2005;19(4):414–21.PubMedCrossRef
68.
go back to reference Fernandez-San-Martin MI, Masa-Font R, Palacios-Soler L, et al. Effectiveness of valerian on insomnia: a meta-analysis of randomized placebo-controlled trials. Sleep Med. 2010;11(6):505–11.PubMedCrossRef Fernandez-San-Martin MI, Masa-Font R, Palacios-Soler L, et al. Effectiveness of valerian on insomnia: a meta-analysis of randomized placebo-controlled trials. Sleep Med. 2010;11(6):505–11.PubMedCrossRef
69.
70.
go back to reference Chagoya de Sanchez V, Hernandez-Munoz R, Suarez J, et al. Temporal variations of adenosine metabolism in human blood. Chronobiol Int. 1996;13(3):163–77.PubMedCrossRef Chagoya de Sanchez V, Hernandez-Munoz R, Suarez J, et al. Temporal variations of adenosine metabolism in human blood. Chronobiol Int. 1996;13(3):163–77.PubMedCrossRef
71.
go back to reference Sanchez CL, Cubero J, Sanchez J, et al. The possible role of human milk nucleotides as sleep inducers. Nutr Neurosci. 2009;12(1):2–8.PubMedCrossRef Sanchez CL, Cubero J, Sanchez J, et al. The possible role of human milk nucleotides as sleep inducers. Nutr Neurosci. 2009;12(1):2–8.PubMedCrossRef
72.
go back to reference Cubero J, Chanclon B, Sanchez S, et al. Improving the quality of infant sleep through the inclusion at supper of cereals enriched with tryptophan, adenosine-5′-phosphate, and uridine-5′-phosphate. Nutr Neurosci. 2009;12(6):272–80.PubMedCrossRef Cubero J, Chanclon B, Sanchez S, et al. Improving the quality of infant sleep through the inclusion at supper of cereals enriched with tryptophan, adenosine-5′-phosphate, and uridine-5′-phosphate. Nutr Neurosci. 2009;12(6):272–80.PubMedCrossRef
73.
go back to reference Bannai M, Kawai N, Ono K, et al. The effects of glycine on subjective daytime performance in partially sleep-restricted healthy volunteers. Front Neurol. 2012;3:61.PubMedCentralPubMedCrossRef Bannai M, Kawai N, Ono K, et al. The effects of glycine on subjective daytime performance in partially sleep-restricted healthy volunteers. Front Neurol. 2012;3:61.PubMedCentralPubMedCrossRef
74.
go back to reference Yamadera W, Inagawa K, Chiba S, et al. Glycine ingestion improves subjective sleep quality in human volunteers, correlating with polysomnographic changes. Sleep Biol Rhythms. 2007;5:126–31.CrossRef Yamadera W, Inagawa K, Chiba S, et al. Glycine ingestion improves subjective sleep quality in human volunteers, correlating with polysomnographic changes. Sleep Biol Rhythms. 2007;5:126–31.CrossRef
75.
go back to reference Jang HS, Jung JY, Jang IS, et al. l-Theanine partially counteracts caffeine-induced sleep disturbances in rats. Pharmacol Biochem Behav. 2012;101(2):217–21.PubMedCrossRef Jang HS, Jung JY, Jang IS, et al. l-Theanine partially counteracts caffeine-induced sleep disturbances in rats. Pharmacol Biochem Behav. 2012;101(2):217–21.PubMedCrossRef
Metadata
Title
Sleep in Elite Athletes and Nutritional Interventions to Enhance Sleep
Author
Shona L. Halson
Publication date
01-05-2014
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue Special Issue 1/2014
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.1007/s40279-014-0147-0

Other articles of this Special Issue 1/2014

Sports Medicine 1/2014 Go to the issue