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TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption

Oligodendrocytes are the myelinating cells of the CNS and, like neurons, are highly sensitive to ischemic damage. However, the mechanisms underlying cytotoxicity in oligodendrocytes during hypoxic/ischemic episodes are not fully understood. TASK-1 is a K(+) leak channel that mediates hypoxic depolar...

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Detalles Bibliográficos
Autores principales: Hawkins, Virginia, Butt, Arthur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Academic Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3657199/
https://www.ncbi.nlm.nih.gov/pubmed/23567653
http://dx.doi.org/10.1016/j.nbd.2013.03.016
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author Hawkins, Virginia
Butt, Arthur
author_facet Hawkins, Virginia
Butt, Arthur
author_sort Hawkins, Virginia
collection PubMed
description Oligodendrocytes are the myelinating cells of the CNS and, like neurons, are highly sensitive to ischemic damage. However, the mechanisms underlying cytotoxicity in oligodendrocytes during hypoxic/ischemic episodes are not fully understood. TASK-1 is a K(+) leak channel that mediates hypoxic depolarisation in neurons. The expression and function of TASK-1 in oligodendrocytes had not previously been addressed. In this study, we investigate the expression of TASK-1 in oligodendrocytes and its role in white matter ischemic damage. Expression of TASK-1 in oligodendrocytes was investigated in the mouse brain using immunostaining. TASK-1 channel function was identified by established pharmacological and electrophysiological strategies, using the whole-cell patch clamp technique in cell cultures of oligodendrocytes from the optic nerve, a typical white matter tract. The role of TASK-1 in hypoxia was examined in isolated intact optic nerves subjected to oxygen glucose deprivation (OGD). Oligodendrocytes are strongly immunopositive for TASK-1 throughout the brain. Patch-clamp identified functional TASK-1-like leak currents in oligodendrocytes using two recognised means of inhibiting TASK-1, decreasing extracellular pH to 6.4 and exposure to the TASK-1 selective inhibitor anandamide. Incubation of optic nerves with methanandamide, a non-hydrolysable form of anandamide, significantly protected oligodendrocytes against hypoxic disruption and death in OGD. Our data demonstrate for the first time that oligodendrocytes express functional TASK-1 channels and provide compelling evidence they contribute to oligodendrocyte damage in hypoxia. Since oligodendrocyte damage is a key factor in ischemic episodes, TASK-1 may provide a potential therapeutic target in stroke and white matter disease.
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spelling pubmed-36571992013-07-01 TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption Hawkins, Virginia Butt, Arthur Neurobiol Dis Article Oligodendrocytes are the myelinating cells of the CNS and, like neurons, are highly sensitive to ischemic damage. However, the mechanisms underlying cytotoxicity in oligodendrocytes during hypoxic/ischemic episodes are not fully understood. TASK-1 is a K(+) leak channel that mediates hypoxic depolarisation in neurons. The expression and function of TASK-1 in oligodendrocytes had not previously been addressed. In this study, we investigate the expression of TASK-1 in oligodendrocytes and its role in white matter ischemic damage. Expression of TASK-1 in oligodendrocytes was investigated in the mouse brain using immunostaining. TASK-1 channel function was identified by established pharmacological and electrophysiological strategies, using the whole-cell patch clamp technique in cell cultures of oligodendrocytes from the optic nerve, a typical white matter tract. The role of TASK-1 in hypoxia was examined in isolated intact optic nerves subjected to oxygen glucose deprivation (OGD). Oligodendrocytes are strongly immunopositive for TASK-1 throughout the brain. Patch-clamp identified functional TASK-1-like leak currents in oligodendrocytes using two recognised means of inhibiting TASK-1, decreasing extracellular pH to 6.4 and exposure to the TASK-1 selective inhibitor anandamide. Incubation of optic nerves with methanandamide, a non-hydrolysable form of anandamide, significantly protected oligodendrocytes against hypoxic disruption and death in OGD. Our data demonstrate for the first time that oligodendrocytes express functional TASK-1 channels and provide compelling evidence they contribute to oligodendrocyte damage in hypoxia. Since oligodendrocyte damage is a key factor in ischemic episodes, TASK-1 may provide a potential therapeutic target in stroke and white matter disease. Academic Press 2013-07 /pmc/articles/PMC3657199/ /pubmed/23567653 http://dx.doi.org/10.1016/j.nbd.2013.03.016 Text en © 2013 Elsevier Inc. This document may be redistributed and reused, subject to certain conditions (http://www.elsevier.com/wps/find/authorsview.authors/supplementalterms1.0) .
spellingShingle Article
Hawkins, Virginia
Butt, Arthur
TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title_full TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title_fullStr TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title_full_unstemmed TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title_short TASK-1 channels in oligodendrocytes: A role in ischemia mediated disruption
title_sort task-1 channels in oligodendrocytes: a role in ischemia mediated disruption
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3657199/
https://www.ncbi.nlm.nih.gov/pubmed/23567653
http://dx.doi.org/10.1016/j.nbd.2013.03.016
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