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GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model

It is now widely accepted that glia cells and gamma-aminobutyric acidergic (GABA) interneurons dynamically regulate synaptic transmission and neuronal activity in time and space. This paper presents a biophysical model that captures the interaction between an astrocyte cell, a GABA interneuron and p...

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Autores principales: Liu, Junxiu, McDaid, Liam, Araque, Alfonso, Wade, John, Harkin, Jim, Karim, Shvan, Henshall, David C., Connolly, Niamh M. C., Johnson, Anju P., Tyrrell, Andy M., Timmis, Jon, Millard, Alan G., Hilder, James, Halliday, David M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6664076/
https://www.ncbi.nlm.nih.gov/pubmed/31396055
http://dx.doi.org/10.3389/fncel.2019.00335
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author Liu, Junxiu
McDaid, Liam
Araque, Alfonso
Wade, John
Harkin, Jim
Karim, Shvan
Henshall, David C.
Connolly, Niamh M. C.
Johnson, Anju P.
Tyrrell, Andy M.
Timmis, Jon
Millard, Alan G.
Hilder, James
Halliday, David M.
author_facet Liu, Junxiu
McDaid, Liam
Araque, Alfonso
Wade, John
Harkin, Jim
Karim, Shvan
Henshall, David C.
Connolly, Niamh M. C.
Johnson, Anju P.
Tyrrell, Andy M.
Timmis, Jon
Millard, Alan G.
Hilder, James
Halliday, David M.
author_sort Liu, Junxiu
collection PubMed
description It is now widely accepted that glia cells and gamma-aminobutyric acidergic (GABA) interneurons dynamically regulate synaptic transmission and neuronal activity in time and space. This paper presents a biophysical model that captures the interaction between an astrocyte cell, a GABA interneuron and pre/postsynaptic neurons. Specifically, GABA released from a GABA interneuron triggers in astrocytes the release of calcium (Ca(2+)) from the endoplasmic reticulum via the inositol 1, 4, 5-trisphosphate (IP(3)) pathway. This results in gliotransmission which elevates the presynaptic transmission probability rate (PR) causing weight potentiation and a gradual increase in postsynaptic neuronal firing, that eventually stabilizes. However, by capturing the complex interactions between IP(3), generated from both GABA and the 2-arachidonyl glycerol (2-AG) pathway, and PR, this paper shows that this interaction not only gives rise to an initial weight potentiation phase but also this phase is followed by postsynaptic bursting behavior. Moreover, the model will show that there is a presynaptic frequency range over which burst firing can occur. The proposed model offers a novel cellular level mechanism that may underpin both seizure-like activity and neuronal synchrony across different brain regions.
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spelling pubmed-66640762019-08-08 GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model Liu, Junxiu McDaid, Liam Araque, Alfonso Wade, John Harkin, Jim Karim, Shvan Henshall, David C. Connolly, Niamh M. C. Johnson, Anju P. Tyrrell, Andy M. Timmis, Jon Millard, Alan G. Hilder, James Halliday, David M. Front Cell Neurosci Cellular Neuroscience It is now widely accepted that glia cells and gamma-aminobutyric acidergic (GABA) interneurons dynamically regulate synaptic transmission and neuronal activity in time and space. This paper presents a biophysical model that captures the interaction between an astrocyte cell, a GABA interneuron and pre/postsynaptic neurons. Specifically, GABA released from a GABA interneuron triggers in astrocytes the release of calcium (Ca(2+)) from the endoplasmic reticulum via the inositol 1, 4, 5-trisphosphate (IP(3)) pathway. This results in gliotransmission which elevates the presynaptic transmission probability rate (PR) causing weight potentiation and a gradual increase in postsynaptic neuronal firing, that eventually stabilizes. However, by capturing the complex interactions between IP(3), generated from both GABA and the 2-arachidonyl glycerol (2-AG) pathway, and PR, this paper shows that this interaction not only gives rise to an initial weight potentiation phase but also this phase is followed by postsynaptic bursting behavior. Moreover, the model will show that there is a presynaptic frequency range over which burst firing can occur. The proposed model offers a novel cellular level mechanism that may underpin both seizure-like activity and neuronal synchrony across different brain regions. Frontiers Media S.A. 2019-07-23 /pmc/articles/PMC6664076/ /pubmed/31396055 http://dx.doi.org/10.3389/fncel.2019.00335 Text en Copyright © 2019 Liu, McDaid, Araque, Wade, Harkin, Karim, Henshall, Connolly, Johnson, Tyrrell, Timmis, Millard, Hilder and Halliday. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular Neuroscience
Liu, Junxiu
McDaid, Liam
Araque, Alfonso
Wade, John
Harkin, Jim
Karim, Shvan
Henshall, David C.
Connolly, Niamh M. C.
Johnson, Anju P.
Tyrrell, Andy M.
Timmis, Jon
Millard, Alan G.
Hilder, James
Halliday, David M.
GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title_full GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title_fullStr GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title_full_unstemmed GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title_short GABA Regulation of Burst Firing in Hippocampal Astrocyte Neural Circuit: A Biophysical Model
title_sort gaba regulation of burst firing in hippocampal astrocyte neural circuit: a biophysical model
topic Cellular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6664076/
https://www.ncbi.nlm.nih.gov/pubmed/31396055
http://dx.doi.org/10.3389/fncel.2019.00335
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