Submitted:
11 April 2025
Posted:
14 April 2025
You are already at the latest version
Abstract

Keywords:
1. Introduction
| Sleep Stage | Characteristics | Functions |
|---|---|---|
| NREM Sleep | ||
| N1 (Light Sleep) | Theta waves | Transition from wakefulness to sleep |
| N2 (Most Common Stage) | Sleep spindles, K-complexes | Memory consolidation |
| N3 (Slow-Wave Sleep) | Deepest sleep, slow-wave activity | Physical repair, immune function |
| REM Sleep | Vivid dreaming, muscle atonia (except diaphragm and eyes), increased brain activity | Cognitive processing, emotional regulation |
| Sleep Cycle | 4–6 cycles per night, ~90 minutes each | Regulates sleep architecture |

2. Materials and Methods


- Appropriate to guide practice: Studies with a moderate to high positive total score.
| Colour co-ordinated grading scheme |
| Exercise caution when applying to practice: Studies with a total negative score. |
| May be appropriate to guide implementation, but some caution is needed: Studies with a zero to low positive total score. |
| Appropriate to guide practice: Studies with a moderate to high positive total score. |
3. Results
| Characteristic | Mean ± SD |
|---|---|
| Gender | M = 542 / F = 408 |
| Unknown Gender | 24 participants |
| Age (years) | 22.92 ± 2.61 |
| Body Mass (kg) | 76.92 ± 18.99 |
| Height (cm) | 174.11 ± 10.37 |
| Values are presented as mean ± standard deviation (SD) with ranges where available | |
![]() |
| Author | Study Design | Population | Sleep Assessment | Nutrient Intervention | Timing | Sleep Outcome | NUQUEST Rating | P2P Rating |
|---|---|---|---|---|---|---|---|---|
| Ferguson et al., 2021 | Double-blinded, counterbalanced, randomised, cross-over study | 15 elite male AFL players | Wrist activity monitors and sleep diaries | 55 g whey protein (1 g tryptophan) | Evening (on training and 2 non-training days) | No improvement in sleep duration or quality who already have adequate sleep | Good (+) | 17 |
| Valenzuela et al., 2023 | Double-blinded, parallel-group, three-arm, randomised controlled design. | 24 Pro U23 Cyclists | Self-rated sleep quality | 40 g casein | 40 g casein (10.30 PM), 40 g casein (6.30 PM), or 40 g carbs (10.30 PM) at 6-day training camp | No significant group differences in sleep quality | Good (+) | 17 |
| Doherty et al., 2023 | Open Label Trial | 15 elite national sailors and middle-distance runners | Questionnaire battery (RESTq Sport, PSQI, CSD-C, RU- Stated, sleep diary | 130 g or 2 kiwi fruit. Following the baseline assessment (Week 1) all subjects began the intervention (Weeks 2–5). | 1 hour pre-bed | Improved sleep quality, increased TST & SE %, fewer awakenings and WASO | Good (+) | 13 |
| MacInnis et al., 2020 | Randomized, Double- Blind Cross over Design | 6 male elite cyclists | Wrist based acti-graphy | A 40-g serving of LA contained 19.7, 4.3, and 1.9 g of essential amino acids, leucine, and tryptophan | 2 hours pre-sleep (3 consecutive evenings) | No improvement in TST, time in bed, or SE | Good (+) | 15 |
| Falkenberg et al., 2021 | Prospective cohort study design | 36 male elite AFL | Wrist actigraphy, sleep diaries | Evening sugar, protein and meal timing analysis | 10 consecutive days (pre-season) | High sugar and long time between eating and bed reduced TST; evening protein reduced SOL | Good (+) | 11 |
| Greenwalt et al., 2023 | Retrospective Study | 14 Div 1 female soccer players | WHOOP bands (24h monitoring), surveys | Pre-sleep protein intake (>5 g) | Various times | >5 g protein before bed lowered recovery score by 11.41 percentage points but no significant effect | Neutral (0) | 9 |
| Yasuda et al., 2019 | Cross Sectional Study | 679 Japanese elite athletes (2016 Rio candidates) | Self-reported questionnaires | Frequency of milk/dairy consumption (0-2x, 3-5x, 6-7x per week) | Ongoing | Higher milk consumption associated with better sleep quality in women, not men | Neutral (0) | 8 |
| Chung et al., 2022 | Double Blind Randomised Control Trial | 19 elite female hockey players | Sleep quality, melatonin & cortisol levels | 30 mL tart cherry juice in 200 mL water | 5 doses over 48 hours (morning and evening) | No effect on melatonin/cortisol, but improved sleep quality | Good (+) | 17 |
| Condo et al., 2022 | Prospective Cohort Study | 32 elite female Australian footballers | Activity monitors, sleep diaries | Diet monitored (carbohydrate, fat, iron, zinc, B12) | 10 consecutive days (pre-season) | Increased carbohydrate intake associated with increased WASO & decreased SE. Higher iron, zinc, and B12 improved sleep outcomes | Good (+) | 9 |
| Harnett et al., 2021 | Double Blind randomised control trial | 19 elite male rugby athletes | Self-reported sleep quality, salivary biomarkers | Daily probiotic (Ultrabiotic 60TM & SBFloractvi TM with 250 mg Saccharomyces boulardii) vs. placebo | Daily for 17 weeks | Across both groups, increased muscle soreness & CRP reduced sleep quality; decreased soreness & CRP improved sleep | Good (+) | 13 |
| Ergolu et al., 2024 | A Pilot Study – Cross sectional design | 115 elite athletes (swimming, canoeing, archery, volleyball, taekwondo) | Richard-Campbell Sleep Scale (RCSQ) | 24-hour food consumption recorded and analysed using nutritional software (Nutrition Information Systems (BeBiS version 8.1) | None | Insufficient calorie intake associated with poorer sleep. Good sleepers consumed 1.6 g/kg BM protein and 1350 mg tryptophan | Good (+) | 11 |
3.1. The nutrition interventions and resultant sleep outcomes
3.1.1. Kiwi Fruit:
3.1.2. Tart Cherry Juice:
3.1.3. Probiotic:
3.1.4. Protein & Typtophan:
3.1.5. Casein:
3.1.6. A-lactalbumin (LA):
3.1.7. Dairy:
3.1.8. Energy Intake:
3.1.9. Energy intake:
3.1.10. Energy intake:
3.1.11. Type of Macronutrient pre sleep:
| Intervention | Application of Intervention | Strength of Practical Application using P2P Matrix & NUQUEST |
|---|---|---|
| Kiwi fruit | 2 x kiwifruit (1 hr. Before bed) may improve sleep duration, SE, NoA, sleep quality and reduce fatigue the morning after. | High |
| Tart Cherry Juice | 30ml tart cherry juice consumed 5 times over 48 hours, morning and evening, may improve TTB, reduced periods of WASO and reduced movement index while sleeping. | High |
| Milk & Dairy consumption | Greater frequency of milk consumption (5-7d/wk), during training periods, is associated lower risk of decrease in subjective sleep quality in elite female athletes but not male. | High |
| Protein & Tryptophan | Higher evening protein intake (> 1 hr. pre sleep) is associated with shorter SOL. Both male and female elite athletes, categorised as good sleepers, tend to consume protein of ~1.6g·kg⁻¹ per day and a tryptophan intake of ~1350mg. Improvements inconclusive if already consuming high protein diet (>2.5kg. g -1) | Moderate |
| Zinc, Iron & B12 | Optimal levels of Zinc, Vitamin B12 and Iron may improve reported quality in elite female athletes. | Moderate |
| Timing | Every additional 1 hour between the main evening meal and bedtime may be associated with a decrease in TST and in reduced periods of WASO. | Moderate |
| Total Calorie Intake | Insufficient calorie intake is associated with poorer sleep so appropriate refuelling strategies to meet caloric demands closer to bed time may increase TST for elite male & female athletes. | Moderate |
| Probiotic | Daily probiotic (Ultrabiotic 60TM & SBFloractvi TM with 250 mg Saccharomyces boulardii) consumption for 17 weeks may help leg heaviness and muscle soreness with reduced CRP concentrations & muscle soreness being related to improved sleep quality and quantity. | Moderate |
| Carbohydrate intake pre bed | Elite female athletes should carefully plan their carbohydrate intake to meet energy & recovery needs, as high carbohydrate intakes are associated with increased WASO and reduced SE. | Moderate – Low |
| A-lactalbumin | No difference in sleep quality compared to collagen peptides. | Moderate – Low |
4. Discussion
Limitations
5. Conclusions
Funding
Conflicts of Interest
References
- Afaghi, A.; O’connor, H.; Chow, C.M. (2007). High-glycemic-index carbohydrate meals shorten sleep onset 1-3. https://academic.oup.com/ajcn/article-abstract/85/2/426/4649589.
- Barrett, E.; Ross, R.P.; O’Toole, P.W.; Fitzgerald, G.F.; Stanton, C. γ-Aminobutyric acid production by culturable bacteria from the human intestine. Journal of Applied Microbiology 2012, 113, 411–417. [Google Scholar] [CrossRef] [PubMed]
- Biggins, M.; Purtill, H.; Fowler, P.; Bender, A.; Sullivan, K.O.; Samuels, C.; Cahalan, R. Sleep in elite multi-sport athletes: Implications for athlete health and wellbeing. Physical Therapy in Sport 2019, 39, 136–142. [Google Scholar] [CrossRef] [PubMed]
- Calleja-González, J.; Bird, S.; Huyghe, T.; Jukic, I.; Cuzzolin, F.; Cos, F.; Marqués-Jiménez, D.; Milanovic, L.; Sampaio, J.; López-Laval, I.; et al. The Recovery Umbrella in the World of Elite Sport: Do Not Forget the Coaching and Performance Staff. Sports 2021, 9, 169. [Google Scholar] [CrossRef] [PubMed]
- Cappuccio, F.P.; Cooper, D.; Delia, L.; Strazzullo, P.; Miller, M.A. Sleep duration predicts cardiovascular outcomes: A systematic review and meta-analysis of prospective studies. European Heart Journal 2011, 32, 1484–1492. [Google Scholar] [CrossRef]
- Carskadon, M.A.; Dement, W.C. (2005). Chapter 2. Normal Sleep: An overview. Principles and Practice of Sleep Medicine, 5th Edition, 16–26.
- Charest, J.; Grandner, M.A. (2024). Sleep, nutrition, and supplements: Implications for athletes. Sleep and Sport: Physical Performance, Mental Performance, Injury Prevention, and Competitive Advantage for Athletes, Coaches, and Trainers, 233–269. [CrossRef]
- Chen, M.; Xu, X.; Liu, Y.; Yao, Y.; Zhang, P.; Liu, J.; Zhang, Q.; Li, R.; Li, H.; Liu, Y.; et al. Association of eating habits with health perception and diseases among Chinese physicians: A cross-sectional study. Frontiers in Nutrition 2023, 10, 1226672. [Google Scholar] [CrossRef]
- Cherasse, Y.; Urade, Y. Dietary Zinc Acts as a Sleep Modulator. International Journal of Molecular Sciences 2017, 18, 2334. [Google Scholar] [CrossRef]
- Chung, J.; Choi, M.; Lee, K. Effects of Short-Term Intake of Montmorency Tart Cherry Juice on Sleep Quality after Intermittent Exercise in Elite Female Field Hockey Players: A Randomized Controlled Trial. International Journal of Environmental Research and Public Health 2022, 19. [Google Scholar] [CrossRef]
- Close, G.L.; Kasper, A.M.; Morton, J.P. From Paper to Podium: Quantifying the Translational Potential of Performance Nutrition Research. Sports Medicine 2019, 49, 25–37. [Google Scholar] [CrossRef]
- Condo, D.; Lastella, M.; Aisbett, B.; Stevens, A.; Roberts, S. Sleep duration and quality are associated with nutrient intake in elite female athletes. Journal of Science and Medicine in Sport 2022, 25, 345–350. [Google Scholar] [CrossRef]
- Curtis, C.; Carling, C.; Tooley, E.; Russell, M. ‘Supporting the Support Staff’: A Narrative Review of Nutritional Opportunities to Enhance Recovery and Wellbeing in Multi-Disciplinary Soccer Performance Staff. Nutrients 2024, 16, 3474. [Google Scholar] [CrossRef]
- Daniel, N.V.S.; Zimberg, I.Z.; Estadella, D.; Garcia, M.C.; Padovani, R.C.; Juzwiak, C.R. Effect of the intake of high or low glycemic index high carbohydrate-meals on athletes’ sleep quality in pre-game nights. Anais Da Academia Brasileira de Ciências 2019, 91, e20180107. [Google Scholar] [CrossRef] [PubMed]
- Doherty, R.; Madigan, S.; Nevill, A.; Warrington, G.; Ellis, J.G. The Impact of Kiwifruit Consumption on the Sleep and Recovery of Elite Athletes. Nutrients 2023, 15, 2274. [Google Scholar] [CrossRef] [PubMed]
- Doherty, R.; Madigan, S.; Warrington, G.; Ellis, J. Sleep and nutrition interactions: Implications for athletes. Nutrients 2019, 11. [Google Scholar] [CrossRef] [PubMed]
- Doherty, R.; Madigan, S.; Warrington, G.; Ellis, J.G. Sleep and Nutrition in Athletes. Current Sleep Medicine Reports 2023, 9, 82–89. [Google Scholar] [CrossRef]
- Edwards, B.J.; Adam, R.L.; Drummond, D.; Gallagher, C.; Pullinger, S.A.; Hulton, A.T.; Richardson, L.D.; Donovan, T.F. Effects of an Acute Dose of Zinc Monomethionine Asparate and Magnesium Asparate (ZMA) on Subsequent Sleep and Next-Day Morning Performance (Countermovement Jumps, Repeated Sprints and Stroop Test). Nutrients 2024, 16, 2466. [Google Scholar] [CrossRef]
- Eroğlu, M.N.; Köse, B.; Sabur Öztürk, B. The Relationship Between Dietary Nutrients and Sleep in Elite Athletes: A Pilot Study. Spor Bilimleri Dergisi 2024, 35, 132–140. [Google Scholar] [CrossRef]
- Falkenberg, E.; Aisbett, B.; Lastella, M.; Roberts, S.; Condo, D. Nutrient intake, meal timing and sleep in elite male Australian football players. Journal of Science and Medicine in Sport 2021, 24, 7–12. [Google Scholar] [CrossRef]
- Ferguson, C.; Aisbett, B.; Lastella, M.; Roberts, S.; Condo, D. Evening Whey Protein Intake, Rich in Tryptophan, and Sleep in Elite Male Australian Rules Football Players on Training and Nontraining Days. International Journal of Sport Nutrition and Exercise Metabolism 2022, 32, 82–88. [Google Scholar] [CrossRef]
- Fernstrom, J.D. Large neutral amino acids: Dietary effects on brain neurochemistry and function. Amino Acids 2013, 45, 419–430. [Google Scholar] [CrossRef]
- Gratwicke, M.; Miles, K.H.; Pyne, D.B.; Pumpa, K.L.; Clark, B. Nutritional interventions to improve sleep in team-sport athletes: A narrative review. Nutrients 2021, 13. [Google Scholar] [CrossRef]
- Greenwalt, C.E.; Angeles, E.; Vukovich, M.D.; Smith-Ryan, A.E.; Bach, C.W.; Sims, S.T.; Zeleny, T.; Holmes, K.E.; Presby, D.M.; Schiltz, K.J.; et al. Pre-sleep feeding, sleep quality, and markers of recovery in division I NCAA female soccer players. Journal of the International Society of Sports Nutrition 2023, 20, 2236055. [Google Scholar] [CrossRef]
- Halson, S.L. (2014). Sleep in elite athletes and nutritional interventions to enhance sleep. Sports Medicine, 44(SUPPL.1). [CrossRef]
- Harnett, J.E.; Pyne, D.B.; McKune, A.J.; Penm, J.; Pumpa, K.L. Probiotic supplementation elicits favourable changes in muscle soreness and sleep quality in rugby players. Journal of Science and Medicine in Sport 2021, 24, 195–199. [Google Scholar] [CrossRef]
- Hirshkowitz, M. Normal human sleep: An overview. Medical Clinics of North America 2004, 88, 551–565. [Google Scholar] [CrossRef]
- Howatson, G.; Bell, P.G.; Tallent, J.; Middleton, B.; McHugh, M.P.; Ellis, J. Effect of tart cherry juice (Prunus cerasus) on melatonin levels and enhanced sleep quality. European Journal of Nutrition 2012, 51, 909–916. [Google Scholar] [CrossRef]
- Irwin, C.; McCartney, D.; Desbrow, B.; Khalesi, S. Effects of probiotics and paraprobiotics on subjective and objective sleep metrics: A systematic review and meta-analysis. European Journal of Clinical Nutrition 2020, 74, 1536–1549. [Google Scholar] [CrossRef]
- Jackson, C.L.; Walker, J.R.; Brown, M.K.; Das, R.; Jones, N.L. A workshop report on the causes and consequences of sleep health disparities. Sleep 2020, 43. [Google Scholar] [CrossRef]
- Jazinaki, M.S.; Gheflati, A.; Moghadam, M.R.S.F.; Hadi, S.; Razavidarmian, M.; Nezhad, M.Y.; Akhtari, H.; Nematizadeh, M.; Safarian, M. Effects of zinc supplementation on sleep quality in humans: A systematic review of randomized controlled trials. Health Science Reports 2024, 7, e70019. [Google Scholar] [CrossRef]
- Juliff, L.E.; Halson, S.L.; Hebert, J.J.; Forsyth, P.L.; Peiffer, J.J. Longer Sleep Durations Are Positively Associated With Finishing Place During a National Multiday Netball Competition. Journal of Strength and Conditioning Research 2018, 32, 189–194. [Google Scholar] [CrossRef]
- Kanon, A.P.; Giezenaar, C.; Roy, N.C.; McNabb, W.C.; Henare, S.J. Acute effects of fresh versus dried Hayward green kiwifruit on sleep quality, mood, and sleep-related urinary metabolites in healthy young men with good and poor sleep quality. Frontiers in Nutrition 2023, 10, 1079609. [Google Scholar] [CrossRef]
- Kardasis, W.; Naquin, E.R.; Garg, R.; Arun, T.; Gopianand, J.S.; Karmakar, E.; Gnana-Prakasam, J.P. The IRONy in Athletic Performance. Nutrients 2023, 15, 4945. [Google Scholar] [CrossRef]
- Kelly, S.E.; Greene-Finestone, L.S.; Yetley, E.A.; Benkhedda, K.; Brooks, S.P.; Wells, G.A.; MacFarlane, A.J. NUQUEST—NUtrition QUality Evaluation Strengthening Tools: Development of tools for the evaluation of risk of bias in nutrition studies. The American Journal of Clinical Nutrition 2022, 115, 256–271. [Google Scholar] [CrossRef]
- Killer, S.C.; Svendsen, I.S.; Jeukendrup, A.E.; Gleeson, M. Evidence of disturbed sleep and mood state in well-trained athletes during short-term intensified training with and without a high carbohydrate nutritional intervention. Journal of Sports Sciences 2017, 35, 1402–1410. [Google Scholar] [CrossRef] [PubMed]
- Kline, C.E.; Chasens, E.R.; Bizhanova, Z.; Sereika, S.M.; Buysse, D.J.; Imes, C.C.; Kariuki, J.K.; Mendez, D.D.; Cajita, M.I.; Rathbun, S.L.; et al. The association between sleep health and weight change during a 12-month behavioral weight loss intervention. International Journal of Obesity 2021, 45, 639–649. [Google Scholar] [CrossRef]
- Lastella, M.; Roach, G.D.; Sargent, C. Travel fatigue and sleep/wake behaviors of professional soccer players during international competition. Sleep Health 2019, 5, 141–147. [Google Scholar] [CrossRef]
- Leeder, J.; Glaister, M.; Pizzoferro, K.; Dawson, J.; Pedlar, C. Sleep duration and quality in elite athletes measured using wristwatch actigraphy. Journal of Sports Sciences 2012, 30, 541–545. [Google Scholar] [CrossRef]
- Lin, H.-H.; Tsai, P.-S.; Fang, S.-C.; Liu, J.-F. Effect of kiwifruit consumption on sleep quality in adults with sleep problems. Asia Pac J Clin Nutr 2011, 20, 169–174. [Google Scholar]
- Lorenz, D.S.; Reiman, M.P.; Lehecka, B.J.; Naylor, A. What Performance Characteristics Determine Elite Versus Nonelite Athletes in the Same Sport? Sports Health: A Multidisciplinary Approach 2013, 5, 542–547. [Google Scholar] [CrossRef]
- MacInnis, M.J. (2020). Presleep α-Lactalbumin Consumption Does Not Improve Sleep Quality or Time-Trial Performance in Cyclists. International Journal of Sport Nutrition and Exercise Metabolism, Volume 30: Issue 3, 197–202. [CrossRef]
- McKay, A.K.A.; Stellingwerff, T.; Smith, E.S.; Martin, D.T.; Mujika, I.; Goosey-Tolfrey, V.L.; Sheppard, J.; Burke, L.M. Defining Training and Performance Caliber: A Participant Classification Framework. International Journal of Sports Physiology and Performance 2022, 17, 317–331. [Google Scholar] [CrossRef]
- Miles, K.H.; Clark, B.; Fowler, P.M.; Miller, J.; Pumpa, K.L. Sleep practices implemented by team sport coaches and sports science support staff: A potential avenue to improve athlete sleep? Journal of Science and Medicine in Sport 2019, 22, 748–752. [Google Scholar] [CrossRef]
- Miles, K.H.; Clark, B.; Fowler, P.M.; Miller, J.; Pumpa, K.L. Sleep practices implemented by team sport coaches and sports science support staff: A potential avenue to improve athlete sleep? Journal of Science and Medicine in Sport 2019, 22, 748–752. [Google Scholar] [CrossRef]
- Mitić, P.; Nedeljković, J.; Bojanić, Ž. , Franceško, M.; Milovanović, I.; Bianco, A.; Drid, P. Differences in the Psychological Profiles of Elite and Non-elite Athletes. Frontiers in Psychology 2021, 12, 635651. [Google Scholar] [CrossRef]
- Moss, K.; Zhang, Y.; Kreutzer, A.; Graybeal, A.J.; Porter, R.R.; Braun-Trocchio, R.; Shah, M. (2022). The Relationship Between Dietary Intake and Sleep Quality in Endurance Athletes. Frontiers in Sports and Active Living, 4. [CrossRef]
- Nédélec, M.; Halson, S.; Delecroix, B.; Abaidia, A.-E.; Ahmaidi, S.; Dupont, G. Sleep Hygiene and Recovery Strategies in Elite Soccer Players. Sports Medicine 2015, 45, 1547–1559. [Google Scholar] [CrossRef]
- Nødtvedt, Ø.O.; Hansen, A.L.; Bjorvatn, B.; Pallesen, S. The effects of kiwi fruit consumption in students with chronic insomnia symptoms: A randomized controlled trial. Sleep and Biological Rhythms 2017, 15, 159–166. [Google Scholar] [CrossRef]
- Ordóñez, F.M.; Oliver, A.J.S.; Bastos, P.C.; Guillén, L.S.; Domínguez, R. (2016). Sleep improvement in athletes: Use of nutritional supplements.
- Patel, *!!! REPLACE !!!*; et al. , AakashK. (2024). Physiology, Sleep Stages. In Stat Pearls. https://www.ncbi.nlm.nih.gov/books/NBK526132/.
- Peuhkuri, K.; Sihvola, N.; Korpela, R. Diet promotes sleep duration and quality. Nutrition Research 2012, 32, 309–319. [Google Scholar] [CrossRef]
- Pilkington, V.; Rice, S.M.; Walton, C.C.; Gwyther, K.; Olive, L.; Butterworth, M.; Clements, M.; Cross, G.; Purcell, R. Prevalence and Correlates of Mental Health Symptoms and Well-Being Among Elite Sport Coaches and High-Performance Support Staff. Sports Medicine - Open 2022, 8, 89. [Google Scholar] [CrossRef]
- Porter, J.M.; Horne, J.A. (1981). BED-TIME FOOD SUPPLEMENTS AND SLEEP: EFFECTS OF DIFFERENT CARBOHYDRATE LEVELS (Electroencephalography and Clinical Neurophys,Ology, Vol. 51, pp. 426–433).
- Ramar, K.; Malhotra, R.K.; Carden, K.A.; Martin, J.L.; Abbasi-Feinberg, F.; Aurora, R.N.; Kapur, V.K.; Olson, E.J.; Rosen, C.L.; Rowley, J.A.; et al. Sleep is essential to health: An American Academy of Sleep Medicine position statement. Journal of Clinical Sleep Medicine 2021, 17, 2115–2119. [Google Scholar] [CrossRef]
- Roehrs, T.; Roth, T. (2001). Sleep, Sleepiness, and Alcohol Use.
- Sargent, C.; Lastella, M.; Halson, S.L.; Roach, G.D. How Much Sleep Does an Elite Athlete Need? International Journal of Sports Physiology and Performance 2021, 16, 1746–1757. [Google Scholar] [CrossRef]
- Sawada, D.; Kawai, T.; Nishida, K.; Kuwano, Y.; Fujiwara, S.; Rokutan, K. Daily intake of Lactobacillus gasseri CP2305 improves mental, physical, and sleep quality among Japanese medical students enrolled in a cadaver dissection course. Journal of Functional Foods 2017, 31, 188–197. [Google Scholar] [CrossRef]
- Swann, C.F.; Moran, A.; Piggott, D. (2015). Defining elite athletes: Issues in the study of expert performance in sport psychology. https://ro.uow.edu.au/sspapers.
- Valenzuela, P.L.; Alejo, L.B.; Montalvo-Pérez, A.; Ojanguren, D.; Górriz, M.; Pagola, I.; Ozcoidi, L.M.; Lucia, A.; Barranco-Gil, D. Pre-sleep protein supplementation in professional cyclists during a training camp: A three-arm randomized controlled trial. Journal of the International Society of Sports Nutrition 2023, 20, 2166366. [Google Scholar] [CrossRef]
- Vlahoyiannis, A.; Andreou, E.; Bargiotas, P.; Aphamis, G.; Sakkas, G.K.; Giannaki, C.D. The effect of chrono-nutritional manipulation of carbohydrate intake on sleep macrostructure: A randomized controlled trial. Clinical Nutrition 2024, 43, 858–868. [Google Scholar] [CrossRef]
- Walsh, N.P.; Halson, S.L.; Sargent, C.; Roach, G.D.; Nédélec, M.; Gupta, L.; Leeder, J.; Fullagar, H.H.; Coutts, A.J.; Edwards, B.J.; et al. Sleep and the athlete: Narrative review and 2021 expert consensus recommendations. British Journal of Sports Medicine 2021, 55, 356–368. [Google Scholar] [CrossRef] [PubMed]
- Watson, N.F.; Badr, M.S.; Belenky, G.; Bliwise, D.L.; Buxton, O.M.; Buysse, D.; Dinges, D.F.; Gangwisch, J.; Grandner, M.A.; Kushida, C.; et al. Recommended amount of sleep for a healthy adult: A joint consensus statement of the American Academy of Sleep Medicine and Sleep Research Society 2015, 11, 591–592. [CrossRef]
- Wong, R.K.; Yang, C.; Song, G.-H.; Wong, J.; Ho, K.-Y. Melatonin Regulation as a Possible Mechanism for Probiotic (VSL#3) in Irritable Bowel Syndrome: A Randomized Double-Blinded Placebo Study. Digestive Diseases and Sciences 2015, 60, 186–194. [Google Scholar] [CrossRef] [PubMed]
- Yasuda, J.; Yoshizaki, T.; Yamamoto, K.; Yoshino, M.; Ota, M.; Kawahara, T.; Kamei, A. Association of Frequency of Milk or Dairy Product Consumption with Subjective Sleep Quality during Training Periods in Japanese Elite Athletes: A Cross-Sectional Study. Journal of Nutritional Science and Vitaminology 2019, 65, 177–183. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.; Muscat, J.E.; Kris-Etherton, P.M.; Chinchilli, V.M.; Fernandez-Mendoza, J.; Al-Shaar, L.; Richie, J.P. Berry Consumption and Sleep in the Adult US General Population: Results from the National Health and Nutrition Examination Survey 2005–2018. Nutrients 2023, 15. [Google Scholar] [CrossRef]
- Zuraikat, F.M.; Makarem, N.; Liao, M.; St-Onge, M.P.; Aggarwal, B. Measures of Poor Sleep Quality Are Associated With Higher Energy Intake and Poor Diet Quality in a Diverse Sample of Women From the Go Red for Women Strategically Focused Research Network. Journal of the American Heart Association 2020, 9. [Google Scholar] [CrossRef]
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
