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Identification of hypoxene metabolites in urine samples using gas chromatography–tandem mass spectrometry for anti-doping control

https://doi.org/10.32362/2410-6593-2024-19-5-393-407

EDN: JSXAYU

Abstract

Objectives. Hypoxen is a drug which possesses antioxidant and antihypoxic effects. It achieves this by increasing the utilization of oxygen by mitochondria, intensifying oxidative phosphorylation, and as a result, improving tissue respiration. Athletes take it during prolonged exercise, in order to increase efficiency and reduce physical overwork. Since 2023, the World Anti-Doping Agency has included the drug in the monitoring program, in the belief that it can be used to gain a competitive advantage. It is thus a candidate for inclusion in the Prohibited List as a potential regulator of the human metabolism. Currently, there are no studies or scientific publications focusing on the identification of hypoxene in biofluids for the purpose of anti-doping control. The aim of this study is to determine the possible metabolites of the drug and their chromato-mass spectrometric characteristics in urine samples using gas chromatography–tandem mass spectrometry (GC–MS/MS) for doping control screening purposes.
Methods. Sample preparation of urine samples was carried out using enzymatic hydrolysis, liquid–liquid extraction and derivatization. The GC–MS/MS method was used for analysis. Screening of hypoxene metabolites was carried out in the mode of total ion current after fragmentation of selected parent ions.
Results. Three specific metabolites of hypoxene (m/z 342, 300, and 346, including trimethylsilyl derivatives) were identified in urine samples of volunteers (n = 3). They can act as markers for taking the target antihypoxant, and their possible structural formulas are given. The excretion curves of two metabolites with an m/z of 300 and 346 respectively in urine were studied. The maximum concentration is reached after 8–14 and 1.5–6 h, respectively. It was established, that these metabolites are reliably identified in urine 90 h or more after a single dose of the drug.
Conclusions. Possible structures of hypoxene metabolites in urine samples from volunteers were determined for the first time and their chromato-mass spectrometric characteristics were established. The approach developed in this study can be used for screening analysis of hypoxene for the purpose of anti-doping control.

About the Authors

P. V. Postnikov
National Anti-Doping Laboratory (Institute), M.V. Lomonosov Moscow State University (NADL MSU)
Russian Federation

Pavel V. Postnikov, Cand. Sci. (Chem.), Head of the Doping Control Department

10-1, Elizavetinskii per., Moscow, 105005

Scopus Author ID 57021610900


Competing Interests:

The authors declare no conflicts of interest



A. V. Polosin
National Anti-Doping Laboratory (Institute), M.V. Lomonosov Moscow State University (NADL MSU)
Russian Federation

Andrey V. Polosin, Chief Specialist of the Doping Control Department

10-1, Elizavetinskii per., Moscow, 105005


Competing Interests:

The authors declare no conflicts of interest



N. B. Savelieva
National Anti-Doping Laboratory (Institute), M.V. Lomonosov Moscow State University (NADL MSU)
Russian Federation

Nadezhda B. Savelieva, Chief Specialist of the Doping Control Department

10-1, Elizavetinskii per., Moscow, 105005


Competing Interests:

The authors declare no conflicts of interest



S. A. Kurbatkin
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Sergey A. Kurbatkin, Assistant, I.P. Alimarin Department of Analitical Chemistry

86, Vernadskogo pr., Moscow, 119571


Competing Interests:

The authors declare no conflicts of interest



Yu. A. Efimova
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Yuliya A. Efimova, Cand. Sci. (Chem.), Assistant Professor, I.P. Alimarin Department of Analitical Chemistry

86, Vernadskogo pr., Moscow, 119571

Scopus Author ID 25228417800


Competing Interests:

The authors declare no conflicts of interest



E. S. Mochalova
National Anti-Doping Laboratory (Institute), M.V. Lomonosov Moscow State University (NADL MSU)
Russian Federation

Elena S. Mochalova, Acting Director

10-1, Elizavetinskii per., Moscow, 105005


Competing Interests:

The authors declare no conflicts of interest



References

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Supplementary files

1. Mass spectra of TMS derivatives of hydroquinone
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Type Исследовательские инструменты
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Indexing metadata ▾
  • Possible structures of hypoxene metabolites in urine samples from volunteers were determined for the first time and their chromato-mass spectrometric characteristics were established.
  • Three specific metabolites of hypoxene (m/z 342, 300, and 346, including trimethylsilyl derivatives) were identified in urine samples of volunteers (n = 3). They can act as markers for taking the target antihypoxant.
  • The approach developed in this study can be used for screening analysis of hypoxene for the purpose of anti-doping control.

Review

For citations:


Postnikov P.V., Polosin A.V., Savelieva N.B., Kurbatkin S.A., Efimova Yu.A., Mochalova E.S. Identification of hypoxene metabolites in urine samples using gas chromatography–tandem mass spectrometry for anti-doping control. Fine Chemical Technologies. 2024;19(5):393-407. https://doi.org/10.32362/2410-6593-2024-19-5-393-407. EDN: JSXAYU

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