Issue 25-1, 2026

Original article

Studies of Adaptation to Hypoxic-Hyperoxic Stress in Paralympic Athletes: A Comparative Randomized Study



ORCIDVictor V. Gorelik1,*, ORCIDSvetlana N. Filippova2, ORCIDOleg S. Smentyna3, ORCIDLiliana S. Revchuk3, ORCIDYana V. Davydova3

1Togliatti State University, Togliatti, Russia
2Moscow State Academy of Physical Education, Moscow, Russia
3 Sergiyevsk Mineral Waters Medical Rehabilitation Center of the Federal Medical and Biological Agency, Sernovodsk, Russia


ABSTRACT

INTRODUCTION.   The present publication examines the effects of interval hypoxic-hyperoxic training, implemented in rehabilitation programmes for Paralympic athletes with musculoskeletal disorders. The restorative effect of individually dosed hypoxic and hyperoxygenic load is aimed at activating the cardiovascular and respiratory systems of the body to transport oxygen and maintain cellular-mitochondrial stages of energy metabolism.

AIM.   To determine the effectiveness of the hypoxic-hyperoxic method for rehabilitation in Paralympic athletes.

MATERIALS AND METHODS.   A total of 30 male Paralympic athletes, aged between 30 and 35 years and exhibiting motor impairments due to paralysis and paresis, were examined. The study was conducted at Sergiyevsk Mineral Waters Medical Rehabilitation Centre in 2023. The participants were divided into two groups: the main group (MG) and the control group (CG). Each group consisted of 15 individuals with similar nosological, gender, and age characteristics. Paralympic athletes with musculoskeletal disorders competed in the following disciplines: boccia — 10 male Paralympians (33 %), badminton — 8 male Paralympians (27 %), orienteering — 12 Paralympians (40 %). The rehabilitation programme in the MG included dosed hypoxic and hyperoxic loads to improve the functional capabilities of the body.

RESULTS.   The findings demonstrated that the increase in the total duration of the hyperoxic phase (in minutes) within a single cycle of exposure in the MG at the beginning of the study was 14.47 ± 0.35, while at the end of the study this figure increased to 17.49 ± 0.26. Furthermore, the correction time for hypoxia (in minutes) decreased from 7.06 ± 0.40 to 6.28 ± 0.01. In addition, the minimum indicator of blood oxygen saturation, SpO2, exhibited an increase, with the average value at the beginning of the study being 81 %, and increasing to 85 % at the end of the study. Similarly, the maximum indicator of blood oxygen saturation, SpO2, also increased, with the average value at the beginning of the study being 96 %, and increasing to 100 % at the end of the study. Moreover, the minimum pulse rate decreased, with the average value for the duration of the procedure decreasing from 71 beats per minute to 62 beats per minute.

DISCUSSION.  It is evident that Paralympic athletes in the main group, who received training effects on the body by varying the oxygen content of the breathing mixture, appear to have increased adaptive reserves. The study demonstrates that the hypoxic-hyperoxic interval training method can enhance the training effect and improve the functional state of Paralympic athletes.

CONCLUSION.   The findings of the study, which examined the effectiveness of alternating hypoxic and hyperoxic conditions on the bodies of Paralympic athletes, established the positive effects of this method. After completing a course of interval hypoxic-hyperoxic training, the main group demonstrated improved functional changes in the cardiorespiratory system.


KEYWORDS: Paralympians, hypoxic-hyperoxic training, reduced oxygen content

FOR CITATION: Gorelik V.V., Filippova S.N., Smentyna O.S., Revchuk L.S., Davydova Ya.V. Studies of Adaptation to Hypoxic-Hyperoxic Stress in Paralympic Athletes: A Comparative Randomized Study. Bulletin of Rehabilitation Medicine. 2026; 25(1):65–74. https://doi.org/10.38025/2078-1962-2026-25-1-65-74 (In Russ.).

FOR CORRESPONDENCE:

Victor V. Gorelik, E-mail: lecgoy@list.ru


References:

  1. Абалян А.Г., Мякинченко Е.Б., Крючков А.С. и др. Научно-методическое обеспечение подготовки паралимпийских команд России с использованием программноцелевого подхода. Вестник спортивной науки. 2016; 1: 3–5. [Abalyan A.G., Myakinchenko E.B., Kryuchkov A.S., et al. Scientific and methodological support for the training of Russian Paralympic teams using a program-targeted approach. Bulletin of Sports Science. 2016; 1: 3–5 (In Russ.).]
  2. Бочаров М.И., Шилов А.С. Кардиографические изменения при острой гипоксии после интервальных гипоксических тренировок человека. Ульяновский медико-биологический журнал. 2023; 3: 131–142. https://doi.org/10.34014/2227-1848-2023-3-131-142 [Bocharov M.I., Shilov A.S. Cardiographic changes in acute hypoxia after interval hypoxic training in humans. Ulyanovsk Medical and Biological Journal. 2023; 3: 131–142. https://doi.org/10.34014/2227-1848-2023-3-131-142 (In Russ.).]
  3. Бурчер Й., Глазачев О.С., Копп М. и др. Эффекты интервальных гипоксических экспозиций и интервальных гипоксических тренировок на переносимость физических нагрузок (нарративный обзор). Спортивная медицина: наука и практика. 2024; 14(2): 16–23. https://doi.org/10.47529/2223-2524.2024.2.5 [Burcher Y., Glazachev O.S., Kopp M., et al. Effects of interval hypoxic exposure and interval hypoxic training on exercise tolerance (narrative review). Sports medicine: science and practice. 2024; 14(2): 16–23. https://doi.org/10.47529/2223-2524.2024.2.5 (In Russ.).]
  4. Вагин Ю.Е., Классина С.Я., Фудин Н.А. Вариабельность сердечного ритма при скоростно-силовой нагрузке спортсменов после гиповентиляционной тренировки. Спортивная медицина: наука и практика. 2022; 12(2): 67–72. https://doi.org/10.47529/2223 2524.2022.2.5 [Vagin Yu.E., Klassina S.Ya., Fudin N.A. Heart rate variability during speed and strength training of athletes after hypoventilation training. Official version: science and practice. 2022; 12(2): 67–72. https://doi.org/10.47529/2223 2524.2022.2.5 (In Russ.).]
  5. Зиамбетов В.Ю. Повышение пневмотахометрических показателей дыхательной системы в условиях гипоксической тренировки с маской для бега. Человек. Спорт. Медицина. 2025; 25(1): 145–151. https://doi.org/10.14529/hsm250118 [Ziambetov V.Y. Increased pneumotachometric parameters of the respiratory system in conditions of hypoxic training with a running mask. Human. Sport. Medicine. 2025; 25(1): 145–151. https://doi.org/10.14529/hsm250118 (In Russ.).]
  6. Карпов А.А. Методы развития общей аэробной выносливости. Инновационные научные исследования. 2021; 6–2(8): 152–156. https://doi.org/10.5281/zenodo.5529022 [Karpov A.A. Methods of developing general aerobic endurance. Innovative scientific research. 2021; 6–2(8): 152–156. https://doi.org/10.5281/zenodo.5529022 (In Russ.).]
  7. Колчинская А.З. Интервальная гипоксическая тренировка в спорте высших достижений. Спортивная медицина. 2008; 1: 9–25. [Kolchinskaya A.Z. Interval hypoxic training in high-performance sports. Sports medicine. 2008; 1: 9–25 (In Russ.).]
  8. Лебедева Н.Б., Егле А.П., Сахарчук А.Ю и др. Современные представления о механизмах гипоксически-гипероксических тренировок и возможности их применения при сердечно-сосудистых заболеваниях (обзор литературы). Бюллетень сибирской медицины. 2025; 24(2): 162–168. https://doi.org/10.20538/1682-0363-2025-2-162-168 [Lebedeva N.B., Egle A.P., Sakharchuk A.Yu., et al. Modern concepts of the mechanisms of hypoxic-hyperoxic training and the possibility of their use in cardiovascular diseases (literature review). Bulletin of Siberian medicine. 2025; 24(2): 162–168. https://doi.org/10.20538/1682-0363-2025-2-162-168 (In Russ.).]
  9. Лукьянова Л.Д., Германова Э.Л., Цыбина Т.А. и др. Эффективность и механизм действия различных типов гипоксических тренировок. Возможность их оптимизации. Патогенез: научно-практический журнал. 2008; 3: 32–36. [Lukyanova L.D., Germanova E.L., Tsybina T.A., et al. The effectiveness and mechanism of action of various types of hypoxic workouts. The possibility of optimizing them. Pathogenesis: a scientific and practical journal. 2008; 3: 32–36 (In Russ.).]
  10. Озолин Э.С. Использование гипербарической оксигенации и нормобарической гипоксии в подготовке спортсменов. Теория и практика физической культуры. 2005; 1: 5–8. [Ozolin E.S. The use of hyperbaric oxygenation and normobaric hypoxia in athletes’ training. Theory and practice of physical culture. 2005; 1: 5–8 (In Russ.).]
  11. Орлов В.А., Стрижакова О.В., Фетисов О.Б. и др. Нормативы и цифровые индикаторы функционального состояния кардиореспираторной системы в технологии «Навигатор здоровья». Вестник новых медтехнологий. 2021; 15(6): 117–123. https://doi.org/10.24412/2075-4094-2021-6-3-7 [Orlov V.A., Strizhakova O.V., Fetisov O.B., et al. Standards and digital indicators of the functional state of the cardiorespiratory system in the “Navigator of Health” technology. Bulletin of new medical technologies. 2021; 15(6): 117–123. https://doi.org/10.24412/2075-4094-2021-6-3-7 (In Russ.).]
  12. Стрелков Р.Б. Перспективы применения метода прерывистой нормобарической гипокситерапии в медицинской практике. Курортные ведомости. 2006; 5: 37–40. [Strelkov R.B. Prospects of using the method of intermittent normobaric hypoxytherapy in medical practice. Resort bulletin. 2006; 5: 37–40 (In Russ.).]
  13. Струганов С.М., Глубокий В.А., Багров С.А. и др. Гипоксическая тренировка как способ коррекции физической работоспособности. Ученые записки университета имени П.Ф. Лесгафта. 2021; 11(201): 440–446. https://doi.org/10.34835/issn.2308-1961.2021.11.p440-446 [Struganov S.M., Glubokiy V.A., Bagrov S.A., et al. Hypoxic training as a way to correct physical performance. Scientific notes of P.F. Lesgaft University. 2021; 11(201): 440–446. https://doi.org/10.34835/issn.2308-1961.2021.11.p440-446 (In Russ.).]
  14. Тамбовцева Р.В., Евстифеев Ю.С. Гипоксические факторы в современной системе подготовки высококвалифицированных спортсменов. Современные вопросы биомедицины. 2025; 9(33). https://doi.org/10.24412/2588-0500-2025_09_03_15 [Tambovtseva R.V., Evstifeev Yu.S. Hypoxic factors in the modern system of training highly qualified athletes. Modern issues of biomedicine. 2025; 9(33). https://doi.org/10.24412/2588-0500-2025_09_03_15 (In Russ.).]
  15. Тимофеев Н.Н., Голубев В.Н., Королев Ю.Н. Гипоксическая гипоксия и адаптивные реакции организма человека. Донозология и здоровый образ жизни. 2013; 1: 53–58. [Timofeev N.N., Golubev V.N., Korolev Yu.N. Hypoxic hypoxia and adaptive reactions of the human body. Prenosology and healthy lifestyle. 2013; 1: 53–58 (In Russ.).]
  16. Яковлев М.Ю., Лебедева О.Д., Владимирский В.Е. и др. Эффективность физических нагрузок в кардиореабилитации. Спортивная медицина: наука и практика. 2022; 12(1): 37–46. https://doi.org/10.47529/2223-2524.2022.1.1 [Yakovlev M.Yu., Lebedeva O.D., Vladimirsky V.E., et al. The effectiveness of physical activity in cardio rehabilitation. Official medicine: science and practice. 2022; 12(1): 37–46. https://doi.org/10.47529/2223-2524.2022.1.1 (In Russ.).]
  17. Brocherie F., Timon R. Long-term effects of hypoxic conditioning on sports performance, health and well-being. Frontiers in Physiology. 2022; 13: 1112754. https://doi.org/10.3389/fphys.2022.1112754
  18. Chang W.Y., Wu K.C., Yang A.L. Simulated Altitude Training and Sport Performance: Protocols and Physiological Effects. Applied Sciences. 2023; 13(20): 11381. https://doi.org/10.3390/app132011381
  19. Kon M, Ohiwa N., Honda A., et al. Effects of systemic hypoxia on human muscular adaptations to resistance exercise training. Physiological Reports. 2014; 2(6): e12033. https://doi.org/10.14814/phy2.12033
  20. Levine B.D. Intermittent hypoxic training: fact and fancy. High Alt. Med. Biol. 2002; 3(2): 177–193. https://doi.org/10.1089/15270290260131911



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This is an open article under the CC BY 4.0 license. Published by the National Medical Research Center for Rehabilitation and Balneology.