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Ischemic preconditioning: prospects of application for the correction of physical performance in military, extreme and sports medicine

https://doi.org/10.18699/SSMJ20230207

Abstract

The essence of the preconditioning effect is the activation of urgent defense mechanisms of adaptation as a result of a short episode of weak, non-damaging hypoxic or ischemic exposure, which contributes to an increase in the tolerance of the subsequent delayed, more severe exposure to hypoxia or ischemia. Aim of the study was to assess the literature data on the possibility of using the method of remote ischemic preconditioning (RIP) as a non-pharmacological method for correcting physical performance. Material and methods. In the Scopus, PubMed and eLibrary databases, a selection and analysis of modern literature sources devoted to the issues of increasing human performance, especially by nonpharmacological methods, as well as the use of distant preconditioning to increase physical performance and the mechanisms for implementing this effect, were carried out. Results. Since the discovery of the phenomenon until now, researchers have considered RIP, mainly as a way to protect organs and cells from ischemic damage in clinical practice. The article presents the literature data on the use of RIP as a non-drug method for improving physical performance with single and course use cases. In addition, the article focuses on the mobilization of the body’s own resources through the mechanisms of adaptation to hypoxia developing during RIP. Conclusions. Among the non-pharmacological methods of increasing physical performance, one of the most promising, in our opinion, is RIP that mobilizes the body’s own resources through the mechanisms of adaptation to hypoxia. The advantage of the method based on short-term cessation of blood circulation in the lower extremities and subsequent reperfusion does not apply to the ways prohibited in sports, does not require the use of drugs and the availability of special equipment, signifcant costs of economic and organizational resources.

About the Authors

V. S. Kudryashov
State Research and Testing Institute of Military Medicine of the Ministry of Defense of the Russian Federation
Russian Federation

Vladislav S. Kudryashov, candidate of medical sciences

195043, Saint-Petersburg, Lesoparkovaya str., 4



I. V. Fateev
State Research and Testing Institute of Military Medicine of the Ministry of Defense of the Russian Federation; Military Medical Academy named after S.M. Kirov of the Ministry of Defense of the Russian Federation
Russian Federation

Ivan V. Fateev, doctor of medical sciences

195043, Saint-Petersburg, Lesoparkovaya str., 4



A. E. Kim
Military Medical Academy named after S.M. Kirov of the Ministry of Defense of the Russian Federation
Russian Federation

 Aleksey E. Kim, candidate of medical sciences

194044, Saint-Petersburg, Akademika Lebedeva str., 6



A. I. Shiryaeva
State Research and Testing Institute of Military Medicine of the Ministry of Defense of the Russian Federation
Russian Federation

 Alena I. Shiryaeva, candidate of medical sciences

195043, Saint-Petersburg, Lesoparkovaya str., 4



A. V. Shkarupa
Military Medical Academy named after S.M. Kirov of the Ministry of Defense of the Russian Federation
Russian Federation

 Aleksandr V. Shkarupa, candidate of medical sciences

194044, Saint-Petersburg, Akademika Lebedeva str., 6 



A. V. Lemeshchenko
Military Medical Academy named after S.M. Kirov of the Ministry of Defense of the Russian Federation
Russian Federation

Aleksey V. Lemeshchenko, candidate of medical sciences,

 194044, Saint-Petersburg, Akademika Lebedeva str., 6 



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44. Crisafulli A., Tangianu F., Tocco F., Concu A., Mameli O., Mulliri G., Caria M.A. Ischemic preconditioning of the muscle improves maximal exercise performance but not maximal oxygen uptake in humans. J. Appl. Physiol. 2011;111(2):530–536. doi: 10.1152/japplphysiol.00266.2011

45. Cruz R.S.D.O., de Aguiar R.A., Turnes T., Pereira K.L., Caputo F. Effects of ischemic preconditioning on maximal constant load cycling performance. J. Appl. Physiol. 2015;119(9):961–967. doi: 10.1152/japplphysiol.00498.2015

46. Kido K., Suga T., Tanaka D., Honjo T., Homma T., Fujita S., Hamaoka T., Isaka T. Ischemic preconditioning accelerates muscle deoxygenation dynamics and enhances exercise endurance during the workto-work test. Physiol. Rep. 2015;3(5):123–135. doi:10.14814/phy2.12395

47. Bailey T.G., Jones H., Gregson W., Atkinson G., Cable N.T., Thijssen D.H. Effect of ischemic preconditioning on lactate accumulation and running performance. Med. Sci. Sports. Exerc. 2012;44(11):2084–2089. doi: 10.1249/MSS.0b013e318262cb17

48. Jean-St-Michel E., Manlhiot C., Li J., Tropak M., Michelsen M.M., Schmidt M.R., McCrindle B.W., Wells G.D., Redington A.N. Remote preconditioning improves maximal performance in highly trained athletes. Med. Sci. Sports. Exerc. 2011;43(7):1280–1286. doi: 10.1249/MSS.0b013e318206845d

49. Kjeld T., Rasmussen M.R., Jattu T., Nielsen H.B., Secher N.H. Ischemic preconditioning of one forearm enhances static and dynamic apnea. Med. Sci. Sports. Exerc. 2014;46(1):151–155. doi: 10.1249/MSS.0b013e3182a4090a

50. Lukyanova L.D., Kirova Ju.I., Sukojan G.V. Signal mechanisms of adaptation to hypoxia and their role in systemic regulation. Biologicheskie membrany = Biological Membranes. 2012;29(4):238. [In Russian].

51. Lindsay A., Petersen C., Blackwell G., Ferguson H., Parker G., Steyn N., Gieseg S.P. The effect of 1 week of repeated ischaemic leg preconditioning on simulated Keirin cycling performance: a randomised trial. BMJ Open Sport. Exerc. Med. 2017;3(1):e000229. doi: 10.1136/bmjsem-2017-00022 31. Okovity S.V., Shustov E.B., Bolotova V.Ts. Working capacity. Fatigue. Correction. Moscow: KNORUS, 2019. 330 p. [In Russian].


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For citations:


Kudryashov V.S., Fateev I.V., Kim A.E., Shiryaeva A.I., Shkarupa A.V., Lemeshchenko A.V. Ischemic preconditioning: prospects of application for the correction of physical performance in military, extreme and sports medicine. Сибирский научный медицинский журнал. 2023;43(2):74-82. (In Russ.) https://doi.org/10.18699/SSMJ20230207

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