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Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity

Impaired behavioral flexibility and repetitive behavior is a common phenotype in autism and other neuropsychiatric disorders, but the underlying synaptic mechanisms are poorly understood. The trans-synaptic glutamate delta (GluD)-Cerebellin 1-Neurexin complex, critical for synapse formation/maintena...

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Autores principales: Liu, Jinxu, Shelkar, Gajanan P., Gandhi, Pauravi J., Gawande, Dinesh Y., Hoover, Andrew, Villalba, Rosa M., Pavuluri, Ratnamala, Smith, Yoland, Dravid, Shashank M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7204410/
https://www.ncbi.nlm.nih.gov/pubmed/31945419
http://dx.doi.org/10.1016/j.nbd.2020.104746
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author Liu, Jinxu
Shelkar, Gajanan P.
Gandhi, Pauravi J.
Gawande, Dinesh Y.
Hoover, Andrew
Villalba, Rosa M.
Pavuluri, Ratnamala
Smith, Yoland
Dravid, Shashank M.
author_facet Liu, Jinxu
Shelkar, Gajanan P.
Gandhi, Pauravi J.
Gawande, Dinesh Y.
Hoover, Andrew
Villalba, Rosa M.
Pavuluri, Ratnamala
Smith, Yoland
Dravid, Shashank M.
author_sort Liu, Jinxu
collection PubMed
description Impaired behavioral flexibility and repetitive behavior is a common phenotype in autism and other neuropsychiatric disorders, but the underlying synaptic mechanisms are poorly understood. The trans-synaptic glutamate delta (GluD)-Cerebellin 1-Neurexin complex, critical for synapse formation/maintenance, represents a vulnerable axis for neuropsychiatric diseases. We have previously found that GluD1 deletion results in reversal learning deficit and repetitive behavior. In this study, we show that selective ablation of GluD1 from the dorsal striatum impairs behavioral flexibility in a water T-maze task. We further found that striatal GluD1 is preferentially found in dendritic shafts, and more frequently associated with thalamic than cortical glutamatergic terminals suggesting localization to projections from the thalamic parafascicular nucleus (Pf). Conditional deletion of GluD1 from the striatum led to a selective loss of thalamic, but not cortical, terminals, and reduced glutamatergic neurotransmission. Optogenetic studies demonstrated functional changes at thalamostriatal synapses from the Pf, but no effect on the corticostriatal system, upon ablation of GluD1 in the dorsal striatum. These studies suggest a novel molecular mechanism by which genetic variations associated with neuropsychiatric disorders may impair behavioral flexibility, and reveal a unique principle by which GluD1 subunit regulates forebrain circuits.
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spelling pubmed-72044102020-05-07 Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity Liu, Jinxu Shelkar, Gajanan P. Gandhi, Pauravi J. Gawande, Dinesh Y. Hoover, Andrew Villalba, Rosa M. Pavuluri, Ratnamala Smith, Yoland Dravid, Shashank M. Neurobiol Dis Article Impaired behavioral flexibility and repetitive behavior is a common phenotype in autism and other neuropsychiatric disorders, but the underlying synaptic mechanisms are poorly understood. The trans-synaptic glutamate delta (GluD)-Cerebellin 1-Neurexin complex, critical for synapse formation/maintenance, represents a vulnerable axis for neuropsychiatric diseases. We have previously found that GluD1 deletion results in reversal learning deficit and repetitive behavior. In this study, we show that selective ablation of GluD1 from the dorsal striatum impairs behavioral flexibility in a water T-maze task. We further found that striatal GluD1 is preferentially found in dendritic shafts, and more frequently associated with thalamic than cortical glutamatergic terminals suggesting localization to projections from the thalamic parafascicular nucleus (Pf). Conditional deletion of GluD1 from the striatum led to a selective loss of thalamic, but not cortical, terminals, and reduced glutamatergic neurotransmission. Optogenetic studies demonstrated functional changes at thalamostriatal synapses from the Pf, but no effect on the corticostriatal system, upon ablation of GluD1 in the dorsal striatum. These studies suggest a novel molecular mechanism by which genetic variations associated with neuropsychiatric disorders may impair behavioral flexibility, and reveal a unique principle by which GluD1 subunit regulates forebrain circuits. 2020-01-13 2020-04 /pmc/articles/PMC7204410/ /pubmed/31945419 http://dx.doi.org/10.1016/j.nbd.2020.104746 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/BY-NC-ND/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Article
Liu, Jinxu
Shelkar, Gajanan P.
Gandhi, Pauravi J.
Gawande, Dinesh Y.
Hoover, Andrew
Villalba, Rosa M.
Pavuluri, Ratnamala
Smith, Yoland
Dravid, Shashank M.
Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title_full Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title_fullStr Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title_full_unstemmed Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title_short Striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
title_sort striatal glutamate delta-1 receptor regulates behavioral flexibility and thalamostriatal connectivity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7204410/
https://www.ncbi.nlm.nih.gov/pubmed/31945419
http://dx.doi.org/10.1016/j.nbd.2020.104746
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