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Structure of circulatory system diseases and their genetic predictors in athletes with high intensity of training and competitive load

https://doi.org/10.47529/2223-2524.2023.4.9

Abstract

Introduction: Morphofunctional changes of the circulatory system organs detected in athletes may remain without due attention, as clinical (phenotypic) signs of pathological abnormalities are very similar to manifestations of cardiovascular system adaptation to intensive physical loads. The aim of the study is to propose a personalized algorithm for biomedical support of professional athletes with abnormalities and diseases of the circulatory organs based on clinical and genomic data.

Materials and methods: The results of in-depth medical examination (2021-2023) of 15,464 athletes who are members of Russian sports teams were analyzed. The structure of circulatory system diseases according to the codes of the International Classification of Diseases, 10th revision (ICD-10), which were included in the summary report of the last examination, was analyzed. Fifty athletes with abnormalities and diseases of the circulatory system organs, experiencing different degrees of intensity of dynamic and static loads in accordance with the Mitchell classification, were selected from the study sample for full genome sequencing and subsequent clinical interpretation of the obtained data.

Results: In the study sample the number of people with pathologic conditions of the circulatory system organs amounted to 6 946 people (45 %). Mitchell classification groups had statistically significant differences with respect to the prevalence of 10 diseases of the circulatory system organs. In 50 DNA samples of professional athletes, 5 probably pathogenic variants (10%), 19 variants with uncertain clinical significance (38%), relevant to the phenotype of a monogenic disease with circulatory system organ damage, were detected.

Conclusion: Molecular genetic testing is an effective tool for differential diagnostics of pathologic and adaptive changes in the organs of the circulatory system. Carrying causative genes in combination with clinical signs allows to change the tactics of medical and biological support of an athlete according to the proposed algorithm.

About the Authors

A. V. Zholinsky
Federal Research and Clinical Center for Sports Medicine and Rehabilitation, Federal Medical and Biological Agency
Russian Federation

Andrey V. Zholinsky, M.D., Ph.D. (Medicine), Director

121059, Moscow, 5, B. Dorogomilovskaya str.



A. I. Kadykova
Federal Research and Clinical Center for Sports Medicine and Rehabilitation, Federal Medical and Biological Agency
Russian Federation

Anastasia I. Kadykova, Doctor of Clinical Laboratory Diagnostics

121059, Moscow, 5, B. Dorogomilovskaya str.



N. S. Gladyshev
Federal Research and Clinical Center for Sports Medicine and Rehabilitation, Federal Medical and Biological Agency
Russian Federation

Nikita S. Gladyshev, junior researcher

121059, Moscow, 5, B. Dorogomilovskaya str.



M. V. Terekhov
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Mikhail V. Terekhov, Analyst, Medical Genomics Department, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10 Pogodinskaya St., build. 1



A. A. Ivashechkin
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Alexey A. Ivashechkin, Analyst, 2nd category, Laboratory of Biobanking and Multi-omics Research Methods, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



V. V. Maksyutina
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Valentina V. Maksyutina, Analyst, 2nd category, Laboratory of Biobanking and Multimix Research Methods, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



A. I. Nekrasova
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Alexandra I. Nekrasova, Analyst, 1st category, Medical Genomics Department, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



S. I. Mitrofanov
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Sergey I. Mitrofanov, Head of the Department of Systems Biology and Bioinformatics, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



M. V. Ivanov
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Mikhail V. Ivanov, Leading Analyst, Medical Genomics Department, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



D. A. Kashtanova
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Darya A. Kashtanova, Deputy Head of Medical Genomics Department, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



V. S. Yudin
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Vladimir S. Yudin, Director, Institute of Synthetic Biology and Genetic Engineering, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



A. A. Keskinov
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Anton A. Keskinov, Deputy Director General, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10, Pogodinskaya St., build. 1



S. M. Yudin
Center of Sports Medicine of the Federal Medical and Biological Agency
Russian Federation

Sergey M. Yudin, Director General, Center for Strategic Planning and Management of Medical and Biological Health Risks, Federal Medical and Biological Agency

119121, Moscow, 10 Pogodinskaya St., build. 1



R. V. Deev
Federal Research and Clinical Center for Sports Medicine and Rehabilitation, Federal Medical and Biological Agency; Avtsyn research institute of human morphology of Federal state budgetary scientific institution “Petrovsky National research centre of surgery”
Russian Federation

Roman V. Deev, M.D., Ph.D. (Medicine), Associate Professor, Leading Researcher; First Deputy Director 

121059, Moscow, B. Dorogomilovskaya St., 5;

117418, Moscow, Tsyurupy St., 3



V. I. Skvortsova
Federal Medical and Biological Agency
Russian Federation

Veronika I. Skvortsova, Corresponding Member of the Russian Academy of Sciences, M.D., D.Sc. (Medicine), Professor, Head of the Federal Medical and Biological Agency

123182, Moscow, Volokolamskoye Shosse, 30



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Zholinsky A.V., Kadykova A.I., Gladyshev N.S., Terekhov M.V., Ivashechkin A.A., Maksyutina V.V., Nekrasova A.I., Mitrofanov S.I., Ivanov M.V., Kashtanova D.A., Yudin V.S., Keskinov A.A., Yudin S.M., Deev R.V., Skvortsova V.I. Structure of circulatory system diseases and their genetic predictors in athletes with high intensity of training and competitive load. Sports medicine: research and practice. 2023;13(4):12-26. (In Russ.) https://doi.org/10.47529/2223-2524.2023.4.9

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ISSN 2223-2524 (Print)
ISSN 2587-9014 (Online)