Objective: To investigate risk for relative energy deficiency in sports (RED-S) among a team of female and male collegiate long-distance runners. Methods: North Dakota State University (Fargo, ND, USA) female and male competitive long-distance runners who agreed to participate during fall semester, 2019, completed an electronic survey containing the LEAF-Q and EAT-26 surveys and additionally completed a DXA scan, to screen for low energy availability and RED-S, disordered eating/eating disorders, and bone health, respectively. Participants were required to be 18 - 25 years old, not injured, training a mini-mum of five hours per week, and currently participating as part of a collegiate competitive team. Thirteen participants (male = 3) finished the study which also included energy intake and exercise expenditure self-reported with a three-day food diary and exercise log and estimated with ESHA Food Processor. Response rate was 42% of entire team; mean age 19.8. Results: The LEAF-Q significantly predicted risk for RED-S (p < 0.007). Correlations using the participants EAT-26 score, energy availability levels (p < 0.508), and whether they were at risk for RED-S (p < 0.208) or not were non-significant for all comparisons, although there was a moderate positive correlation between EAT-26 and RED-S risk (R = 0.454). Participants at risk for RED-S had higher occurrences of injuries (p < 0.022) and lower DXA measured Z-scores (p < 0.063) than those not at risk for RED-S. Conclusion: Long distance runners at risk for RED-S may have higher occurrences of injuries and lower bone mineral density, which can be easily measured using available screeners and DXA technology. What are the new findings: · Long distance runners at risk for RED-S may have higher occurrences of injuries and lower bone mineral density then age- and sex-matched individuals. How might it impact on clinical practice in the near future: · This is important for future clinical practice to be aware of the potential negative impacts on the bone development in young adults; · Particularly long-distance runners or athletes in leanness focused sports should be screened for energy availability which can impact performance, and future bone density.
References
[1]
Mountjoy, M., Sundgot-Borgen, J., Burke, L., et al. (2014) The IOC Consensus Statement: Beyond the Female Athlete Triad—Relative Energy Deficiency in Sport (RED-S). British Journal of Sports Medicine, 48, 491-497. https://doi.org/10.1136/bjsports-2014-093502
[2]
Mountjoy, M., Sundgot-Borgen, J., Burke, L., et al. (2018) International Olympic Committee (IOC) Consensus Statement on Relative Energy Deficiency in Sport (RED-S): 2018 Update. International Journal of Sport Nutrition and Exercise Metabolism, 28, 316-331. https://doi.org/10.1123/ijsnem.2018-0136
[3]
Nattiv, A., Loucks, A.B., Manore, M.M., et al. (2007) The Female Athlete Triad. Medicine & Science in Sports & Exercise, 39, 1867-1882. https://doi.org/10.1249/mss.0b013e318149f111
[4]
Loucks, A.B., Kiens, B. and Wright, H.H. (2011) Energy Availability in Athletes. Journal of Sports Sciences 29, S7-S15. https://doi.org/10.1080/02640414.2011.588958
[5]
Dufour, D.L. and Sauther, M.L. (2002) Comparative and Evolutionary Dimensions of the Energetics of Human Pregnancy and Lactation. American Journal of Human Biology, 14, 584-602. https://doi.org/10.1002/ajhb.10071
[6]
Jasienska, G. (2003) Energy Metabolism and the Evolution of Reproductive Suppression in the Human Female. Acta Biotheoretica, 51, 1-18. https://doi.org/10.1023/A:1023035321162
[7]
Scofield, K.L. and Hecht, S. (2012) Bone Health in Endurance Athletes: Runners, Cyclists, and Swimmers. Current Sports Medicine Reports, 11, 328-334. https://doi.org/10.1249/JSR.0b013e3182779193
[8]
Garner, D.M. and Garfinkel, P.E. (1979) The Eating Attitudes Test: An Index of the Symptoms of Anorexia Nervosa. Psychological Medicine, 9, 273-279. https://doi.org/10.1017/S0033291700030762
[9]
Melin, A., Tornberg, A.B., Skouby, S., et al. (2014) The LEAF Questionnaire: A Screening Tool for the Identification of Female Athletes at Risk for the Female Athlete Triad. British Journal of Sports Medicine, 48, 540-545. https://doi.org/10.1136/bjsports-2013-093240
[10]
Slater, J. (2015) Low Energy Availability in New Zealand Recreational Athletes. Master Thesis, University of Otago, Dunedin.
[11]
O’Donnell, E., Goodman, J.M., Mak, S., et al. (2015) Discordant Orthostatic Reflex Renin-Angiotensin and Sympathoneural Responses in Premenopausal Exercising-Hypoestrogenic Women. Hypertension, 65, 1089-1095. https://doi.org/10.1161/HYPERTENSIONAHA.114.04976
[12]
A Collaboration of the National Collegiate Athletic Association (NCAA) Sports, Cardiovascular, and Wellness Nutrition (SCAN) & Collegiate and Professional Sports Dietitians Association (CPSDA). https://www.sportsrd.org/wp-content/uploads/2018/11/Energy_Availability_Fact_Sheet_WEB.pdf
[13]
Leslie, W.D., Adler, R.A., El-Hajj Fuleihan, G., et al. (2006) Application of the 1994 WHO Classification to Populations Other than Postmenopausal Caucasian Women: The 2005 ISCD Official Positions. Journal of Clinical Densitometry, 9, 22-30. https://doi.org/10.1016/j.jocd.2006.05.004
[14]
Heikura, I.A., Uusitalo, A.L.T., Stellingwerff, T., et al. (2018) Low Energy Availability Is Difficult to Assess but Outcomes Have Large Impact on Bone Injury Rates in Elite Distance Athletes. International Journal of Sport Nutrition and Exercise Metabolism, 28, 403-411. https://doi.org/10.1123/ijsnem.2017-0313
[15]
Joy, E., De Souza, M.J., Nattiv, A., et al. (2014) 2014 Female Athlete Triad Coalition Consensus Statement on Treatment and Return to Play of the Female Athlete Triad. Current Sports Medicine Reports, 13, 219-232.
[16]
Tornberg, Å.B., Melin, A., Koivula, F.M., et al. (2017) Reduced Neuromuscular Performance in Amenorrheic Elite Endurance Athletes. Medicine & Science in Sports & Exercise, 49, 2478-2485. https://doi.org/10.1249/MSS.0000000000001383
[17]
Sygo, J., Coates, A.M., Sesbreno, E., et al. (2018) Prevalence of Indicators of Low Energy Availability in Elite Female Sprinters. International Journal of Sport Nutrition and Exercise Metabolism, 28, 490-496. https://doi.org/10.1123/ijsnem.2017-0397
[18]
Joy, E., De Souza, M.J., Nattiv, A., et al. (2014) 2014 Female Athlete Triad Coalition Consensus Statement on Treatment and Return to Play of the Female Athlete Triad. Current Sports Medicine Reports, 13, 219-232. https://doi.org/10.1249/JSR.0000000000000077
[19]
Cialdella-Kam, L., Guebels, C.P., Maddalozzo, G.F. and Manore, M.M. (2014) Dietary Intervention Restored Menses in Female Athletes with Exercise-Associated Menstrual Dysfunction with Limited Impact on Bone and Muscle Health. Nutrients, 6, 3018-3039. https://doi.org/10.3390/nu6083018
[20]
Kong, P. and Harris, L.M. (2015) The Sporting Body: Body Image and Eating Disorder Symptomatology among Female Athletes from Leanness Focused and Nonleanness Focused Sports. The Journal of Psychology, 149, 141-60 https://doi.org/10.1080/00223980.2013.846291
[21]
Martinsen, M. and Sundgot-Borgen, J. (2013) Higher Prevalence of Eating Disorders among Adolescent Elite Athletes than Controls. Medicine & Science in Sports & Exercise, 45, 1188-1197. https://doi.org/10.1249/MSS.0b013e318281a939
[22]
Papageorgiou, M., Elliott-Sale, K.J., Parsons, A., et al. (2017) Effects of Reduced Energy Availability on Bone Metabolism in Women and Men. Bone, 105, 191-199. https://doi.org/10.1016/j.bone.2017.08.019
[23]
Karpinski, C. and Rosenbloom, C.A. (2017) Sports Nutrition: A Handbook for Professionals. 6th Edition, Academy of Nutrition and Dietetics, Chicago