Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites

Background and Objectives: The processes taking place in each element of a neurogliovascular unit will have repercussions in the entire unit. Astrocytes produce arachidonic acid, and its metabolites play a key role in neurogliovascular dynamics with a possibility for bidirectional control,...

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Main Authors: Verveyko, Darya V., Verisokin, Andrey Yu., Lagosha, Stanislav V., Brazhe, Alexey R.
Format: Article
Language:English
Published: Saratov State University 2023-06-01
Series:Известия Саратовского университета. Новая серия Серия: Физика
Subjects:
Online Access:https://fizika.sgu.ru/sites/fizika.sgu.ru/files/text-pdf/2023/06/fizika_2023_2-44-52.pdf
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author Verveyko, Darya V.
Verisokin, Andrey Yu.
Lagosha, Stanislav V.
Brazhe, Alexey R.
author_facet Verveyko, Darya V.
Verisokin, Andrey Yu.
Lagosha, Stanislav V.
Brazhe, Alexey R.
author_sort Verveyko, Darya V.
collection DOAJ
description Background and Objectives: The processes taking place in each element of a neurogliovascular unit will have repercussions in the entire unit. Astrocytes produce arachidonic acid, and its metabolites play a key role in neurogliovascular dynamics with a possibility for bidirectional control, specifically EETs and PGE2 have a vasodilatory effect while 20-HETE acts as a vasoconstrictor. We develop a minimalistic model of model of neurogliovascular unit which takes into account the effect of arachidonic acid metabolites on the blood vessel radius, determining the blood flow and further activity of the elements. Materials and Methods: In order to test the model, we simulate two scenarios of model behavior, including an external influence leading to an increase in neuronal potassium, and an external influence on EETs. Results: We have proposed a mathematical model of the neurogliovascular unit, which accounts for IP3-dependent calcium dynamics in the astrocyte, neuronal activity, and vascular dynamics, and relies on arachidonic acid and its metabolites as vasoactive substances. Numerical simulations have demonstrated the plausibility of such a control loop involving the elements of the neurogliovascular unit and associated with the influence of arachidonic acid metabolites on vascular tone and indirectly on synaptic activity. We conclude that the model can be used for further theoretical studies of the regulatory mechanisms pertaining to cerebral perfusion.
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spelling doaj.art-4e430c46adcf468cb07a059265c3121d2023-07-09T16:54:23ZengSaratov State UniversityИзвестия Саратовского университета. Новая серия Серия: Физика1817-30202542-193X2023-06-0123214114910.18500/1817-3020-2023-23-2-141-149Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolitesVerveyko, Darya V.0Verisokin, Andrey Yu.1Lagosha, Stanislav V.2Brazhe, Alexey R.3Kursk State University, 33 Radishcheva St., Kursk 35000, RussiaKursk State University, 33 Radishcheva St., Kursk 35000, RussiaLomonosov Moscow State University, 119991, Russian Federation, Moscow, Leninskie gory, 1Lomonosov Moscow State University, 119991, Russian Federation, Moscow, Leninskie gory, 1Background and Objectives: The processes taking place in each element of a neurogliovascular unit will have repercussions in the entire unit. Astrocytes produce arachidonic acid, and its metabolites play a key role in neurogliovascular dynamics with a possibility for bidirectional control, specifically EETs and PGE2 have a vasodilatory effect while 20-HETE acts as a vasoconstrictor. We develop a minimalistic model of model of neurogliovascular unit which takes into account the effect of arachidonic acid metabolites on the blood vessel radius, determining the blood flow and further activity of the elements. Materials and Methods: In order to test the model, we simulate two scenarios of model behavior, including an external influence leading to an increase in neuronal potassium, and an external influence on EETs. Results: We have proposed a mathematical model of the neurogliovascular unit, which accounts for IP3-dependent calcium dynamics in the astrocyte, neuronal activity, and vascular dynamics, and relies on arachidonic acid and its metabolites as vasoactive substances. Numerical simulations have demonstrated the plausibility of such a control loop involving the elements of the neurogliovascular unit and associated with the influence of arachidonic acid metabolites on vascular tone and indirectly on synaptic activity. We conclude that the model can be used for further theoretical studies of the regulatory mechanisms pertaining to cerebral perfusion.https://fizika.sgu.ru/sites/fizika.sgu.ru/files/text-pdf/2023/06/fizika_2023_2-44-52.pdfastrocytearachidonic acidsynaptic activityneurogliovascular unit
spellingShingle Verveyko, Darya V.
Verisokin, Andrey Yu.
Lagosha, Stanislav V.
Brazhe, Alexey R.
Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
Известия Саратовского университета. Новая серия Серия: Физика
astrocyte
arachidonic acid
synaptic activity
neurogliovascular unit
title Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
title_full Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
title_fullStr Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
title_full_unstemmed Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
title_short Competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
title_sort competitive bidirectional pathways of vascular tone regulation via arachidonic acid metabolites
topic astrocyte
arachidonic acid
synaptic activity
neurogliovascular unit
url https://fizika.sgu.ru/sites/fizika.sgu.ru/files/text-pdf/2023/06/fizika_2023_2-44-52.pdf
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AT lagoshastanislavv competitivebidirectionalpathwaysofvasculartoneregulationviaarachidonicacidmetabolites
AT brazhealexeyr competitivebidirectionalpathwaysofvasculartoneregulationviaarachidonicacidmetabolites