The Role of GABA Receptors in Seizure Development When Breathing Hyperbaric Oxygen
- Авторлар: Alekseeva O.S.1, Platonova T.F.1, Demchenko I.T.1
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Мекемелер:
- Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of Sciences
- Шығарылым: Том 111, № 6 (2025)
- Беттер: 944-956
- Бөлім: EXPERIMENTAL ARTICLES
- URL: https://kazanmedjournal.ru/0869-8139/article/view/687414
- DOI: https://doi.org/10.31857/S0869813925060083
- EDN: https://elibrary.ru/TEQXKS
- ID: 687414
Дәйексөз келтіру
Аннотация
The use of hyperbaric oxygen (HBO2) in medicine and in underwater diving is associated with the risk of its toxic (convulsant) effect on the central nervous system, the pathophysiological mechanisms of which have not been sufficiently studied. A common hypothesis about the mechanism of HBO2-induced convulsions is the idea that extreme hyperoxia suppresses GABAergic function with subsequent increase in CNS excitation, leading to convulsions. The deficit of GABAergic function in HBO2 is due to a decrease in the synthesis of the mediator, while the involvement of other components of inhibitory neurotransmission, in particular, GABA receptors, remains unclear. The aim of this work was to study the involvement of GABA receptors in the development of hyperbaric oxygen convulsions. In the course of the work, motor convulsions in HBO2 were assessed in rats that were injected with GABA receptor agonists: muscimol or baclofen into the lateral ventricle of the brain before hyperoxic exposure. The affinity of GABA receptors to these drugs was also assessed against the background of an increased level of cerebral GABA caused by intraventricular administration of nipecotic acid. New data from the studies are: (a) activation of GABA-A receptors with muscimol delayed the onset of seizures in HBO2, (b) the GABA-B receptor agonist baclofen weakened the development of hyperbaric oxygen seizures, but its anticonvulsant effect was reliably lower than that of muscimol, (c) the anticonvulsant efficacy of muscimol and baclofen was preserved with an increase in extracellular GABA caused by inhibition of GABA transporters with nipecotic acid. The affinity of GABA-A and GABA-B receptors to the inhibitory neurotransmitter did not change under conditions of hyperbaric hyperoxia.
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Авторлар туралы
O. Alekseeva
Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of Sciences
Хат алмасуға жауапты Автор.
Email: osa72@inbox.ru
Ресей, St. Petersburg
T. Platonova
Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of Sciences
Email: osa72@inbox.ru
Ресей, St. Petersburg
I. Demchenko
Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of Sciences
Email: osa72@inbox.ru
Ресей, St. Petersburg
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