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Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.

Microglia are the brain’s resident innate immune cells and also have a role in synaptic plasticity. Microglial processes continuously survey the brain parenchyma, interact with synaptic elements and maintain tissue homeostasis. However, the mechanisms that control surveillance and its role in synapt...

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Autores principales: Stowell, Rianne D., Sipe, Grayson O., Dawes, Ryan P., Batchelor, Hanna N., Lordy, Katheryn A., Whitelaw, Brendan S., Stoessel, Mark B., Bidlack, Jean M., Brown, Edward, Sur, Mriganka, Majewska, Ania K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6875777/
https://www.ncbi.nlm.nih.gov/pubmed/31636451
http://dx.doi.org/10.1038/s41593-019-0514-0
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author Stowell, Rianne D.
Sipe, Grayson O.
Dawes, Ryan P.
Batchelor, Hanna N.
Lordy, Katheryn A.
Whitelaw, Brendan S.
Stoessel, Mark B.
Bidlack, Jean M.
Brown, Edward
Sur, Mriganka
Majewska, Ania K.
author_facet Stowell, Rianne D.
Sipe, Grayson O.
Dawes, Ryan P.
Batchelor, Hanna N.
Lordy, Katheryn A.
Whitelaw, Brendan S.
Stoessel, Mark B.
Bidlack, Jean M.
Brown, Edward
Sur, Mriganka
Majewska, Ania K.
author_sort Stowell, Rianne D.
collection PubMed
description Microglia are the brain’s resident innate immune cells and also have a role in synaptic plasticity. Microglial processes continuously survey the brain parenchyma, interact with synaptic elements and maintain tissue homeostasis. However, the mechanisms that control surveillance and its role in synaptic plasticity are poorly understood. Microglial dynamics in vivo have been primarily studied in anesthetized animals. Here we report that microglial surveillance and injury response are reduced in awake mice compared to anesthetized mice, suggesting that arousal state modulates microglial function. Pharmacological stimulation of β2-adrenergic receptors recapitulated these observations and disrupted experience-dependent plasticity, and these effects required the presence of β2-adrenergic receptors in microglia. These results indicate that microglial roles in surveillance and synaptic plasticity in the mouse brain are modulated by noradrenergic tone fluctuations between arousal states and emphasize the need to understand the effect of disruptions of adrenergic signaling in neurodevelopment and neuropathology.
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spelling pubmed-68757772020-04-21 Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex. Stowell, Rianne D. Sipe, Grayson O. Dawes, Ryan P. Batchelor, Hanna N. Lordy, Katheryn A. Whitelaw, Brendan S. Stoessel, Mark B. Bidlack, Jean M. Brown, Edward Sur, Mriganka Majewska, Ania K. Nat Neurosci Article Microglia are the brain’s resident innate immune cells and also have a role in synaptic plasticity. Microglial processes continuously survey the brain parenchyma, interact with synaptic elements and maintain tissue homeostasis. However, the mechanisms that control surveillance and its role in synaptic plasticity are poorly understood. Microglial dynamics in vivo have been primarily studied in anesthetized animals. Here we report that microglial surveillance and injury response are reduced in awake mice compared to anesthetized mice, suggesting that arousal state modulates microglial function. Pharmacological stimulation of β2-adrenergic receptors recapitulated these observations and disrupted experience-dependent plasticity, and these effects required the presence of β2-adrenergic receptors in microglia. These results indicate that microglial roles in surveillance and synaptic plasticity in the mouse brain are modulated by noradrenergic tone fluctuations between arousal states and emphasize the need to understand the effect of disruptions of adrenergic signaling in neurodevelopment and neuropathology. 2019-10-21 2019-11 /pmc/articles/PMC6875777/ /pubmed/31636451 http://dx.doi.org/10.1038/s41593-019-0514-0 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Stowell, Rianne D.
Sipe, Grayson O.
Dawes, Ryan P.
Batchelor, Hanna N.
Lordy, Katheryn A.
Whitelaw, Brendan S.
Stoessel, Mark B.
Bidlack, Jean M.
Brown, Edward
Sur, Mriganka
Majewska, Ania K.
Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title_full Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title_fullStr Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title_full_unstemmed Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title_short Noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
title_sort noradrenergic signaling the wakeful state inhibits microglial surveillance and synaptic plasticity in the mouse visual cortex.
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6875777/
https://www.ncbi.nlm.nih.gov/pubmed/31636451
http://dx.doi.org/10.1038/s41593-019-0514-0
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