RED-S IN ENDURANCE ATHLETES — SKELETAL CONSEQUENCES OF CHRONIC LOW ENERGY AVAILABILITY

Authors

DOI:

https://doi.org/10.31435/ijitss.3(51).2026.6648

Keywords:

Relative Energy Deficiency in Sport, RED-S, Low Energy Availability, Endurance Athletes, Bone Health, Stress Fractures, LEA

Abstract

Background. Relative Energy Deficiency in Sport (RED-S) is an increasingly recognized health problem among endurance athletes. The main mechanism leading to the development of RED-S is low energy availability (LEA), resulting from insufficient energy intake in relation to exercise energy expenditure. Chronic energy deficiency may lead to hormonal, metabolic and regenerative disturbances, as well as impaired bone health and an increased risk of stress fractures.

Aim. The aim of this review was to summarize current knowledge regarding RED-S in endurance athletes, with particular emphasis on the impact of low energy availability on bone health and the risk of stress fractures.

Material and methods. This review was based on an analysis of scientific literature available in PubMed and Google Scholar databases. Publications concerning RED-S, low energy availability, bone health, hormonal mechanisms, and stress fractures in endurance athletes were included. The analysis included review articles, observational studies, cross-sectional studies, and expert consensus statements published mainly between 2014 and 2026.

Results. The analyzed studies indicate that chronic LEA contributes to disturbances in the hypothalamic–pituitary–gonadal axis, reduced sex hormone concentrations, increased cortisol levels, and decreased IGF-1 concentrations. These hormonal alterations negatively affect bone remodeling processes, leading to decreased bone mineral density and increased susceptibility to bone stress injuries and stress fractures. Female athletes with menstrual disturbances and adolescent athletes during the period of peak bone mass acquisition appear to be particularly vulnerable. RED-S affects both elite and recreational athletes.

Conclusions. RED-S constitutes a significant health concern in endurance sports. Early identification of LEA symptoms, appropriate nutritional support, and proper training load management are essential for preventing long-term bone complications. Multidisciplinary care and education of athletes, coaches, and healthcare professionals play a key role in the prevention and management of RED-S.

References

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). Br J Sports Med, 48(7), 491–497. https://doi.org/10.1136/bjsports-2014-093502

Cupka, M., & Sedliak, M. (2023). Hungry runners - low energy availability in male endurance athletes and its impact on performance and testosterone: Mini-review. Eur J Transl Myol, 33(2), 11104. https://doi.org/10.4081/ejtm.2023.11104

Lodge, M. T., Ward-Ritacco, C. L., & Melanson, K. J. (2023). Considerations of low carbohydrate availability (LCA) to relative energy deficiency in Sport (RED-S) in Female endurance athletes: A narrative review. Nutrients, 15(20), 4457. https://doi.org/10.3390/nu15204457

Elliott-Sale, K. J., Tenforde, A. S., Parziale, A. L., Holtzman, B., & Ackerman, K. E. (2018). Endocrine effects of relative energy deficiency in Sport. Int J Sport Nutr Exerc Metab, 28(4), 335–349. https://doi.org/10.1123/ijsnem.2018-0127

da Rocha Lemos Costa, T. M., Borba, V. Z. C., Correa, R. G. P., & Moreira, C. A. (2022). Stress fractures. Arch Endocrinol Metab, 66(5), 765–773. https://doi.org/10.20945/2359-3997000000562

Warden, S. J., Edwards, W. B., & Willy, R. W. (2021). Preventing bone stress injuries in runners with optimal workload. Curr Osteoporos Rep, 19(3), 298–307. https://doi.org/10.1007/s11914-021-00666-y

Wong, L., Leibner, L., Vicioso, C., Shah, B., & Ranade, S. C. (2025). Functional hypothalamic amenorrhea in adolescent athletes impairs bone accrual and increases fracture risk. Front Endocrinol (Lausanne), 16, 1709695. https://doi.org/10.3389/fendo.2025.1709695

Mountjoy, M., Sundgot-Borgen, J. K., Burke, L. M., et al. (2018). IOC consensus statement on relative energy deficiency in sport (RED-S): 2018 update. Br J Sports Med, 52(11), 687–697. https://doi.org/10.1136/bjsports-2018-099193

Heikura, I. A., Uusitalo, A. L. T., Stellingwerff, T., Bergland, D., Mero, A. A., & Burke, L. M. (2018). Low energy availability is difficult to assess but outcomes have large impact on bone injury rates in elite distance athletes. Int J Sport Nutr Exerc Metab, 28(4), 403–411. https://doi.org/10.1123/ijsnem.2017-0313

Loucks, A. B., & Thuma, J. R. (2003). Luteinizing hormone pulsatility is disrupted at a threshold of energy availability in regularly menstruating women. J Clin Endocrinol Metab, 88(1), 297–311. https://doi.org/10.1210/jc.2002-020369

Langbein, R. K., Martin, D., Allen-Collinson, J., Crust, L., & Jackman, P. C. (2021). "I'd got self-destruction down to a fine art": A qualitative exploration of relative energy deficiency in sport (RED-S) in endurance athletes. J Sports Sci, 39(14), 1555–1564. https://doi.org/10.1080/02640414.2021.1883312

O'Donnell, J., White, C., & Dobbin, N. (2023). Perspectives on relative energy deficiency in sport (RED-S): A qualitative case study of athletes, coaches and medical professionals from a super league netball club. PLoS One, 18(5). https://doi.org/10.1371/journal.pone.0285040

Fahrenholtz, I. L., Melin, A. K., Wasserfurth, P., et al. (2022). Risk of low energy availability, disordered eating, exercise addiction, and food intolerances in Female endurance athletes. Front Sports Act Living, 4, 869594. https://doi.org/10.3389/fspor.2022.869594

Gould, R. J., Ridout, A. J., & Newton, J. L. (2023). Relative energy deficiency in Sport (RED-S) in adolescents - A practical review. Int J Sports Med, 44(4), 236–246. https://doi.org/10.1055/a-1947-3174

Wilwand, M., Pritchett, K., Miles, M., Pritchett, R., & Larson, A. (2024). The prevalence of stress fractures and the associated LEAF-Q responses, self-reported exercise volume and dietary behaviors in Female recreational runners. Int J Exerc Sci, 17(2), 1092–1104.

Presutti, F., Paoletti, S., Conte, F., et al. (2026). Stress fracture in athletes: A practical approach. J Clin Med, 15(8), 3077. https://doi.org/10.3390/jcm15083077

Henninger, K., Pritchett, K., Brooke, N. K., & Dambacher, L. (2024). Low energy availability, disordered eating, exercise dependence, and fueling strategies in trail runners. Int J Exerc Sci, 16(2), 1471–1486.

Torstveit, M. K., & Sundgot-Borgen, J. (2005). The female athlete triad exists in both elite athletes and controls. Med Sci Sports Exerc, 37(9), 1449–1459. https://doi.org/10.1249/01.mss.0000177678.73041.38

Hoch, A. Z., Pajewski, N. M., Moraski, L., et al. (2009). Prevalence of the female athlete triad in high school athletes and sedentary students. Clin J Sport Med, 19(5), 421–428. https://doi.org/10.1097/JSM.0b013e3181b8c136

Atadja, L., Beck, J., & Franklin, C. (2024). The importance of bone health for pediatric athletes: From juvenile osteochondritis dissecans to relative energy deficiency in sports. J Pediatr Soc North Am, 7, 100052. https://doi.org/10.1016/j.jposna.2024.100052

Beck, B., & Drysdale, L. (2021). Risk factors, diagnosis and management of bone stress injuries in adolescent athletes: A narrative review. Sports (Basel), 9(4), 52. https://doi.org/10.3390/sports9040052

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Published

2026-09-17

How to Cite

Markowska, H., Komosińska, H., Doroshkov, V., Kobiałkowski, Łukasz, Dubova, Y., Manila, Y., Sienicka, M., Zhaharina, I., Kasperska, A., Kłuś, A., & Torz, A. (2026). RED-S IN ENDURANCE ATHLETES — SKELETAL CONSEQUENCES OF CHRONIC LOW ENERGY AVAILABILITY. International Journal of Innovative Technologies in Social Science, 3(3(51). https://doi.org/10.31435/ijitss.3(51).2026.6648

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