Cargando…

The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding

Mutations in autism spectrum disorder (ASD) risk genes disrupt neural network dynamics that ultimately lead to abnormal behavior. To understand how ASD-risk genes influence neural circuit computation during behavior, we analyzed the hippocampal network by performing large-scale cellular calcium imag...

Descripción completa

Detalles Bibliográficos
Autores principales: Mount, Rebecca A., Athif, Mohamed, O’Connor, Margaret, Saligrama, Amith, Tseng, Hua-an, Sridhar, Sudiksha, Zhou, Chengqian, Bortz, Emma, San Antonio, Erynne, Kramer, Mark A., Man, Heng-Ye, Han, Xue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10641898/
https://www.ncbi.nlm.nih.gov/pubmed/37965217
http://dx.doi.org/10.3389/fnins.2023.1277501
_version_ 1785146851591192576
author Mount, Rebecca A.
Athif, Mohamed
O’Connor, Margaret
Saligrama, Amith
Tseng, Hua-an
Sridhar, Sudiksha
Zhou, Chengqian
Bortz, Emma
San Antonio, Erynne
Kramer, Mark A.
Man, Heng-Ye
Han, Xue
author_facet Mount, Rebecca A.
Athif, Mohamed
O’Connor, Margaret
Saligrama, Amith
Tseng, Hua-an
Sridhar, Sudiksha
Zhou, Chengqian
Bortz, Emma
San Antonio, Erynne
Kramer, Mark A.
Man, Heng-Ye
Han, Xue
author_sort Mount, Rebecca A.
collection PubMed
description Mutations in autism spectrum disorder (ASD) risk genes disrupt neural network dynamics that ultimately lead to abnormal behavior. To understand how ASD-risk genes influence neural circuit computation during behavior, we analyzed the hippocampal network by performing large-scale cellular calcium imaging from hundreds of individual CA1 neurons simultaneously in transgenic mice with total knockout of the X-linked ASD-risk gene NEXMIF (neurite extension and migration factor). As NEXMIF knockout in mice led to profound learning and memory deficits, we examined the CA1 network during voluntary locomotion, a fundamental component of spatial memory. We found that NEXMIF knockout does not alter the overall excitability of individual neurons but exaggerates movement-related neuronal responses. To quantify network functional connectivity changes, we applied closeness centrality analysis from graph theory to our large-scale calcium imaging datasets, in addition to using the conventional pairwise correlation analysis. Closeness centrality analysis considers both the number of connections and the connection strength between neurons within a network. We found that in wild-type mice the CA1 network desynchronizes during locomotion, consistent with increased network information coding during active behavior. Upon NEXMIF knockout, CA1 network is over-synchronized regardless of behavioral state and fails to desynchronize during locomotion, highlighting how perturbations in ASD-implicated genes create abnormal network synchronization that could contribute to ASD-related behaviors.
format Online
Article
Text
id pubmed-10641898
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-106418982023-11-14 The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding Mount, Rebecca A. Athif, Mohamed O’Connor, Margaret Saligrama, Amith Tseng, Hua-an Sridhar, Sudiksha Zhou, Chengqian Bortz, Emma San Antonio, Erynne Kramer, Mark A. Man, Heng-Ye Han, Xue Front Neurosci Neuroscience Mutations in autism spectrum disorder (ASD) risk genes disrupt neural network dynamics that ultimately lead to abnormal behavior. To understand how ASD-risk genes influence neural circuit computation during behavior, we analyzed the hippocampal network by performing large-scale cellular calcium imaging from hundreds of individual CA1 neurons simultaneously in transgenic mice with total knockout of the X-linked ASD-risk gene NEXMIF (neurite extension and migration factor). As NEXMIF knockout in mice led to profound learning and memory deficits, we examined the CA1 network during voluntary locomotion, a fundamental component of spatial memory. We found that NEXMIF knockout does not alter the overall excitability of individual neurons but exaggerates movement-related neuronal responses. To quantify network functional connectivity changes, we applied closeness centrality analysis from graph theory to our large-scale calcium imaging datasets, in addition to using the conventional pairwise correlation analysis. Closeness centrality analysis considers both the number of connections and the connection strength between neurons within a network. We found that in wild-type mice the CA1 network desynchronizes during locomotion, consistent with increased network information coding during active behavior. Upon NEXMIF knockout, CA1 network is over-synchronized regardless of behavioral state and fails to desynchronize during locomotion, highlighting how perturbations in ASD-implicated genes create abnormal network synchronization that could contribute to ASD-related behaviors. Frontiers Media S.A. 2023-10-27 /pmc/articles/PMC10641898/ /pubmed/37965217 http://dx.doi.org/10.3389/fnins.2023.1277501 Text en Copyright © 2023 Mount, Athif, O’Connor, Saligrama, Tseng, Sridhar, Zhou, Bortz, San Antonio, Kramer, Man and Han. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Mount, Rebecca A.
Athif, Mohamed
O’Connor, Margaret
Saligrama, Amith
Tseng, Hua-an
Sridhar, Sudiksha
Zhou, Chengqian
Bortz, Emma
San Antonio, Erynne
Kramer, Mark A.
Man, Heng-Ye
Han, Xue
The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title_full The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title_fullStr The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title_full_unstemmed The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title_short The autism spectrum disorder risk gene NEXMIF over-synchronizes hippocampal CA1 network and alters neuronal coding
title_sort autism spectrum disorder risk gene nexmif over-synchronizes hippocampal ca1 network and alters neuronal coding
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10641898/
https://www.ncbi.nlm.nih.gov/pubmed/37965217
http://dx.doi.org/10.3389/fnins.2023.1277501
work_keys_str_mv AT mountrebeccaa theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT athifmohamed theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT oconnormargaret theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT saligramaamith theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT tsenghuaan theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT sridharsudiksha theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT zhouchengqian theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT bortzemma theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT sanantonioerynne theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT kramermarka theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT manhengye theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT hanxue theautismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT mountrebeccaa autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT athifmohamed autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT oconnormargaret autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT saligramaamith autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT tsenghuaan autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT sridharsudiksha autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT zhouchengqian autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT bortzemma autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT sanantonioerynne autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT kramermarka autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT manhengye autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding
AT hanxue autismspectrumdisorderriskgenenexmifoversynchronizeshippocampalca1networkandaltersneuronalcoding