Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity

Both inhibitory and excitatory input development are shaped by activity, but one may be dependent on the other. Here, the authors examine plasticity of inhibitory inputs in vivo, as well as behavioral consequences in tadpoles where excitatory transmission has been impaired.

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Autores principales: Hai-yan He, Wanhua Shen, Lijun Zheng, Xia Guo, Hollis T. Cline
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2018
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Acceso en línea:https://doaj.org/article/fe7125f9a83347c9871914ef2010d97a
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spelling oai:doaj.org-article:fe7125f9a83347c9871914ef2010d97a2021-12-02T15:34:05ZExcitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity10.1038/s41467-018-05125-42041-1723https://doaj.org/article/fe7125f9a83347c9871914ef2010d97a2018-07-01T00:00:00Zhttps://doi.org/10.1038/s41467-018-05125-4https://doaj.org/toc/2041-1723Both inhibitory and excitatory input development are shaped by activity, but one may be dependent on the other. Here, the authors examine plasticity of inhibitory inputs in vivo, as well as behavioral consequences in tadpoles where excitatory transmission has been impaired.Hai-yan HeWanhua ShenLijun ZhengXia GuoHollis T. ClineNature PortfolioarticleScienceQENNature Communications, Vol 9, Iss 1, Pp 1-14 (2018)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Hai-yan He
Wanhua Shen
Lijun Zheng
Xia Guo
Hollis T. Cline
Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
description Both inhibitory and excitatory input development are shaped by activity, but one may be dependent on the other. Here, the authors examine plasticity of inhibitory inputs in vivo, as well as behavioral consequences in tadpoles where excitatory transmission has been impaired.
format article
author Hai-yan He
Wanhua Shen
Lijun Zheng
Xia Guo
Hollis T. Cline
author_facet Hai-yan He
Wanhua Shen
Lijun Zheng
Xia Guo
Hollis T. Cline
author_sort Hai-yan He
title Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
title_short Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
title_full Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
title_fullStr Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
title_full_unstemmed Excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
title_sort excitatory synaptic dysfunction cell-autonomously decreases inhibitory inputs and disrupts structural and functional plasticity
publisher Nature Portfolio
publishDate 2018
url https://doaj.org/article/fe7125f9a83347c9871914ef2010d97a
work_keys_str_mv AT haiyanhe excitatorysynapticdysfunctioncellautonomouslydecreasesinhibitoryinputsanddisruptsstructuralandfunctionalplasticity
AT wanhuashen excitatorysynapticdysfunctioncellautonomouslydecreasesinhibitoryinputsanddisruptsstructuralandfunctionalplasticity
AT lijunzheng excitatorysynapticdysfunctioncellautonomouslydecreasesinhibitoryinputsanddisruptsstructuralandfunctionalplasticity
AT xiaguo excitatorysynapticdysfunctioncellautonomouslydecreasesinhibitoryinputsanddisruptsstructuralandfunctionalplasticity
AT hollistcline excitatorysynapticdysfunctioncellautonomouslydecreasesinhibitoryinputsanddisruptsstructuralandfunctionalplasticity
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