Possibilities of a supramolecular system based on hexamolybdenum cluster complexes in the determination of amitriptyline by amperometric immunosensors in human urine
- Autores: Brusnitsyn D.V.1, Medyantseva E.P.1, Ramazanova A.N.1, Prytkova A.V.1, Karimova E.R.2, Elistratova Y.G.3, Mustafina A.R.3, Sokolov M.N.4, Eremin S.A.5, Mukhametova L.I.5
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Afiliações:
- Kazan (Volga Region) Federal University
- Interregional Clinical and Diagnostic Center
- Federal Research Center “Kazan Scientific Center” of the Russian Academy of Sciences
- A.V. Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences
- M.V. Lomonosov Moscow State University
- Edição: Volume 79, Nº 6 (2024)
- Páginas: 623-630
- Seção: ORIGINAL ARTICLES
- ##submission.dateSubmitted##: 31.01.2025
- URL: https://snv63.ru/0044-4502/article/view/650210
- DOI: https://doi.org/10.31857/S0044450224060092
- EDN: https://elibrary.ru/ttrizi
- ID: 650210
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Resumo
A method for the determination of amitriptyline as a representative of tricyclic antidepressants by immunosensors using supramolecular systems based on hexamolybdenum cluster complexes in human urine was developed. These complexes are electrochemically active and give a stable analytical signal, which was utilized in the development of amperometric immunosensors. Luminescence and dynamic light scattering methods were applied to prove the formation of a supramolecular system of self-organized hexamolybdenum nanoparticles and chitosan molecules. A composite material based on hexamolybdenum cluster complexes combined with reduced graphene oxide was developed. The working range of amitriptyline concentrations when determined by amperometric immunosensor was 1 × 10-9 -1 × 10-4 M, the lower limit of detectable contents lies at the level of 5 × 10-10 M, the content of amitriptyline in urine samples – at the level of (n – 7) × 10-8 M. Comparison of the results of the analysis by amperometric immunosensor and polarization fluorescence immunoassay showed the absence of significant systematic errors. The ability to determine amitriptyline in biological fluids makes it possible to select the optimal therapeutic dose of the drug, i.e., to develop approaches to the creation of personalized medicine.
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Sobre autores
D. Brusnitsyn
Kazan (Volga Region) Federal University
Autor responsável pela correspondência
Email: brussman@mail.ru
A.M. Butlerov Chemical Institute
Rússia, 420008 KazanE. Medyantseva
Kazan (Volga Region) Federal University
Email: brussman@mail.ru
A.M. Butlerov Chemical Institute
Rússia, 420008 KazanA. Ramazanova
Kazan (Volga Region) Federal University
Email: brussman@mail.ru
A.M. Butlerov Chemical Institute
Rússia, 420008 KazanA. Prytkova
Kazan (Volga Region) Federal University
Email: brussman@mail.ru
A.M. Butlerov Chemical Institute
Rússia, 420008 KazanE. Karimova
Interregional Clinical and Diagnostic Center
Email: brussman@mail.ru
Rússia, 420101 Kazan
Y. Elistratova
Federal Research Center “Kazan Scientific Center” of the Russian Academy of Sciences
Email: brussman@mail.ru
A.E. Arbuzov Institute of Organic and Physical Chemistry
Rússia, 420088 KazanA. Mustafina
Federal Research Center “Kazan Scientific Center” of the Russian Academy of Sciences
Email: brussman@mail.ru
A.E. Arbuzov Institute of Organic and Physical Chemistry
Rússia, 420088 KazanM. Sokolov
A.V. Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences
Email: brussman@mail.ru
Rússia, 630090 Novosibirsk
S. Eremin
M.V. Lomonosov Moscow State University
Email: brussman@mail.ru
Department of Chemistry
Rússia, 119991 MoscowL. Mukhametova
M.V. Lomonosov Moscow State University
Email: brussman@mail.ru
Department of Chemistry
Rússia, 119991 MoscowBibliografia
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