Nuclear Physics and Atomic Energy

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Nuclear Physics and Atomic Energy

  ISSN: 1818-331X (Print), 2074-0565 (Online)
  Publisher: Institute for Nuclear Research of the National Academy of Sciences of Ukraine
  Languages: Ukrainian, English
  Periodicity: 4 times per year

  Open access peer reviewed journal


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Nucl. Phys. At. Energy 2023, volume 24, issue 1, pages 60-66.
Section: Radiobiology and Radioecology.
Received: 01.09.2022; Accepted: 30.12.2022; Published online: 12.04.2023.
PDF Full text (ua)
https://doi.org/10.15407/jnpae2023.01.060

Prooxidant-antioxidant processes in blood and liver of murine rodents (Myodes glareolus and Apodemus flavicollis) under single radiation exposure

Yu. P. Hrynevych1,*, L. I. Makovetska1,2, A. I. Lópska1, O. O. Burdo1

1 Institute for Nuclear Research, National Academy of Sciences of Ukraine, Kyiv, Ukraine
2 R. E. Kavetsky Institute of Experimental Pathology, Oncology and Radiobiology, National Academy of Sciences of Ukraine, Kyiv, Ukraine


*Corresponding author. E-mail address: green47@ukr.net

Abstract: The effect of total single X-ray irradiation (1.5 Gy) on the course of free radical processes (FRP) in the blood and liver of red fistula (Myodes glareolus) and yellow-throated mouse (Apodemus flavicollis) was studied. It is shown that physicochemical regulation of FRP in the blood of murine rodents under total X-ray irradiation (1.5 Gy) in the early stages is carried out mainly due to catalase and reduced glutathione (GSH). This is evidenced by the stoichiometry of the CL reaction and symbat changes in the prooxidant-antioxidant ratio (PAR) and basic kinetic parameters of the CL reaction (Imax, Ifin) and antibat changes to PAR - catalase and GSH.

Keywords: murine rodents, X-rays, free radical processes, blood, liver, catalase, glutathione reduced.

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