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Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex

Communication between neuronal and glial cells is important for many brain functions. Astrocytes can modulate synaptic strength via Ca(2+)-stimulated release of various gliotransmitters, including glutamate and ATP. A physiological role of ATP release from astrocytes was suggested by its contributio...

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Autores principales: Lalo, Ulyana, Palygin, Oleg, Rasooli-Nejad, Seyed, Andrew, Jemma, Haydon, Philip G., Pankratov, Yuriy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3883644/
https://www.ncbi.nlm.nih.gov/pubmed/24409095
http://dx.doi.org/10.1371/journal.pbio.1001747
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author Lalo, Ulyana
Palygin, Oleg
Rasooli-Nejad, Seyed
Andrew, Jemma
Haydon, Philip G.
Pankratov, Yuriy
author_facet Lalo, Ulyana
Palygin, Oleg
Rasooli-Nejad, Seyed
Andrew, Jemma
Haydon, Philip G.
Pankratov, Yuriy
author_sort Lalo, Ulyana
collection PubMed
description Communication between neuronal and glial cells is important for many brain functions. Astrocytes can modulate synaptic strength via Ca(2+)-stimulated release of various gliotransmitters, including glutamate and ATP. A physiological role of ATP release from astrocytes was suggested by its contribution to glial Ca(2+)-waves and purinergic modulation of neuronal activity and sleep homeostasis. The mechanisms underlying release of gliotransmitters remain uncertain, and exocytosis is the most intriguing and debated pathway. We investigated release of ATP from acutely dissociated cortical astrocytes using “sniff-cell” approach and demonstrated that release is vesicular in nature and can be triggered by elevation of intracellular Ca(2+) via metabotropic and ionotropic receptors or direct UV-uncaging. The exocytosis of ATP from neocortical astrocytes occurred in the millisecond time scale contrasting with much slower nonvesicular release of gliotransmitters via Best1 and TREK-1 channels, reported recently in hippocampus. Furthermore, we discovered that elevation of cytosolic Ca(2+) in cortical astrocytes triggered the release of ATP that directly activated quantal purinergic currents in the pyramidal neurons. The glia-driven burst of purinergic currents in neurons was followed by significant attenuation of both synaptic and tonic inhibition. The Ca(2+)-entry through the neuronal P2X purinoreceptors led to phosphorylation-dependent down-regulation of GABAA receptors. The negative purinergic modulation of postsynaptic GABA receptors was accompanied by small presynaptic enhancement of GABA release. Glia-driven purinergic modulation of inhibitory transmission was not observed in neurons when astrocytes expressed dn-SNARE to impair exocytosis. The astrocyte-driven purinergic currents and glia-driven modulation of GABA receptors were significantly reduced in the P2X4 KO mice. Our data provide a key evidence to support the physiological importance of exocytosis of ATP from astrocytes in the neocortex.
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spelling pubmed-38836442014-01-09 Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex Lalo, Ulyana Palygin, Oleg Rasooli-Nejad, Seyed Andrew, Jemma Haydon, Philip G. Pankratov, Yuriy PLoS Biol Research Article Communication between neuronal and glial cells is important for many brain functions. Astrocytes can modulate synaptic strength via Ca(2+)-stimulated release of various gliotransmitters, including glutamate and ATP. A physiological role of ATP release from astrocytes was suggested by its contribution to glial Ca(2+)-waves and purinergic modulation of neuronal activity and sleep homeostasis. The mechanisms underlying release of gliotransmitters remain uncertain, and exocytosis is the most intriguing and debated pathway. We investigated release of ATP from acutely dissociated cortical astrocytes using “sniff-cell” approach and demonstrated that release is vesicular in nature and can be triggered by elevation of intracellular Ca(2+) via metabotropic and ionotropic receptors or direct UV-uncaging. The exocytosis of ATP from neocortical astrocytes occurred in the millisecond time scale contrasting with much slower nonvesicular release of gliotransmitters via Best1 and TREK-1 channels, reported recently in hippocampus. Furthermore, we discovered that elevation of cytosolic Ca(2+) in cortical astrocytes triggered the release of ATP that directly activated quantal purinergic currents in the pyramidal neurons. The glia-driven burst of purinergic currents in neurons was followed by significant attenuation of both synaptic and tonic inhibition. The Ca(2+)-entry through the neuronal P2X purinoreceptors led to phosphorylation-dependent down-regulation of GABAA receptors. The negative purinergic modulation of postsynaptic GABA receptors was accompanied by small presynaptic enhancement of GABA release. Glia-driven purinergic modulation of inhibitory transmission was not observed in neurons when astrocytes expressed dn-SNARE to impair exocytosis. The astrocyte-driven purinergic currents and glia-driven modulation of GABA receptors were significantly reduced in the P2X4 KO mice. Our data provide a key evidence to support the physiological importance of exocytosis of ATP from astrocytes in the neocortex. Public Library of Science 2014-01-07 /pmc/articles/PMC3883644/ /pubmed/24409095 http://dx.doi.org/10.1371/journal.pbio.1001747 Text en © 2014 Lalo et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lalo, Ulyana
Palygin, Oleg
Rasooli-Nejad, Seyed
Andrew, Jemma
Haydon, Philip G.
Pankratov, Yuriy
Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title_full Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title_fullStr Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title_full_unstemmed Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title_short Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex
title_sort exocytosis of atp from astrocytes modulates phasic and tonic inhibition in the neocortex
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3883644/
https://www.ncbi.nlm.nih.gov/pubmed/24409095
http://dx.doi.org/10.1371/journal.pbio.1001747
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