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Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome

Hyperexcitability of brain circuits is a common feature of autism spectrum disorders (ASDs). Genetic deletion of a chromatin-binding protein, retinoic acid induced 1 (RAI1), causes Smith–Magenis syndrome (SMS). SMS is a syndromic ASD associated with intellectual disability, autistic features, malada...

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Autores principales: Chang, Ya-Ting, Kowalczyk, Max, Fogerson, P. Michelle, Lee, Yu-Ju, Haque, Minza, Adams, Eliza L., Wang, David C., DeNardo, Laura A., Tessier-Lavigne, Marc, Huguenard, John R., Luo, Liqun, Huang, Wei-Hsiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9618093/
https://www.ncbi.nlm.nih.gov/pubmed/36256819
http://dx.doi.org/10.1073/pnas.2210122119
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author Chang, Ya-Ting
Kowalczyk, Max
Fogerson, P. Michelle
Lee, Yu-Ju
Haque, Minza
Adams, Eliza L.
Wang, David C.
DeNardo, Laura A.
Tessier-Lavigne, Marc
Huguenard, John R.
Luo, Liqun
Huang, Wei-Hsiang
author_facet Chang, Ya-Ting
Kowalczyk, Max
Fogerson, P. Michelle
Lee, Yu-Ju
Haque, Minza
Adams, Eliza L.
Wang, David C.
DeNardo, Laura A.
Tessier-Lavigne, Marc
Huguenard, John R.
Luo, Liqun
Huang, Wei-Hsiang
author_sort Chang, Ya-Ting
collection PubMed
description Hyperexcitability of brain circuits is a common feature of autism spectrum disorders (ASDs). Genetic deletion of a chromatin-binding protein, retinoic acid induced 1 (RAI1), causes Smith–Magenis syndrome (SMS). SMS is a syndromic ASD associated with intellectual disability, autistic features, maladaptive behaviors, overt seizures, and abnormal electroencephalogram (EEG) patterns. The molecular and neural mechanisms underlying abnormal brain activity in SMS remain unclear. Here we show that panneural Rai1 deletions in mice result in increased seizure susceptibility and prolonged hippocampal seizure duration in vivo and increased dentate gyrus population spikes ex vivo. Brain-wide mapping of neuronal activity pinpointed selective cell types within the limbic system, including the hippocampal dentate gyrus granule cells (dGCs) that are hyperactivated by chemoconvulsant administration or sensory experience in Rai1-deficient brains. Deletion of Rai1 from glutamatergic neurons, but not from gamma-aminobutyric acidergic (GABAergic) neurons, was responsible for increased seizure susceptibility. Deleting Rai1 from the Emx1(Cre)-lineage glutamatergic neurons resulted in abnormal dGC properties, including increased excitatory synaptic transmission and increased intrinsic excitability. Our work uncovers the mechanism of neuronal hyperexcitability in SMS by identifying Rai1 as a negative regulator of dGC intrinsic and synaptic excitability.
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spelling pubmed-96180932022-10-31 Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome Chang, Ya-Ting Kowalczyk, Max Fogerson, P. Michelle Lee, Yu-Ju Haque, Minza Adams, Eliza L. Wang, David C. DeNardo, Laura A. Tessier-Lavigne, Marc Huguenard, John R. Luo, Liqun Huang, Wei-Hsiang Proc Natl Acad Sci U S A Biological Sciences Hyperexcitability of brain circuits is a common feature of autism spectrum disorders (ASDs). Genetic deletion of a chromatin-binding protein, retinoic acid induced 1 (RAI1), causes Smith–Magenis syndrome (SMS). SMS is a syndromic ASD associated with intellectual disability, autistic features, maladaptive behaviors, overt seizures, and abnormal electroencephalogram (EEG) patterns. The molecular and neural mechanisms underlying abnormal brain activity in SMS remain unclear. Here we show that panneural Rai1 deletions in mice result in increased seizure susceptibility and prolonged hippocampal seizure duration in vivo and increased dentate gyrus population spikes ex vivo. Brain-wide mapping of neuronal activity pinpointed selective cell types within the limbic system, including the hippocampal dentate gyrus granule cells (dGCs) that are hyperactivated by chemoconvulsant administration or sensory experience in Rai1-deficient brains. Deletion of Rai1 from glutamatergic neurons, but not from gamma-aminobutyric acidergic (GABAergic) neurons, was responsible for increased seizure susceptibility. Deleting Rai1 from the Emx1(Cre)-lineage glutamatergic neurons resulted in abnormal dGC properties, including increased excitatory synaptic transmission and increased intrinsic excitability. Our work uncovers the mechanism of neuronal hyperexcitability in SMS by identifying Rai1 as a negative regulator of dGC intrinsic and synaptic excitability. National Academy of Sciences 2022-10-18 2022-10-25 /pmc/articles/PMC9618093/ /pubmed/36256819 http://dx.doi.org/10.1073/pnas.2210122119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Chang, Ya-Ting
Kowalczyk, Max
Fogerson, P. Michelle
Lee, Yu-Ju
Haque, Minza
Adams, Eliza L.
Wang, David C.
DeNardo, Laura A.
Tessier-Lavigne, Marc
Huguenard, John R.
Luo, Liqun
Huang, Wei-Hsiang
Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title_full Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title_fullStr Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title_full_unstemmed Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title_short Loss of Rai1 enhances hippocampal excitability and epileptogenesis in mouse models of Smith–Magenis syndrome
title_sort loss of rai1 enhances hippocampal excitability and epileptogenesis in mouse models of smith–magenis syndrome
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9618093/
https://www.ncbi.nlm.nih.gov/pubmed/36256819
http://dx.doi.org/10.1073/pnas.2210122119
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