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The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a

BACKGROUND: Shank3 is a scaffolding protein essential for the organization and function of the glutamatergic postsynapse. Monogenic mutations in SHANK3 gene are among the leading genetic causes of Autism Spectrum Disorders (ASD). The multiplicity of Shank3 isoforms seems to generate as much function...

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Autores principales: Bouquier, Nathalie, Sakkaki, Sophie, Raynaud, Fabrice, Hemonnot-Girard, Anne-Laure, Seube, Vincent, Compan, Vincent, Bertaso, Federica, Perroy, Julie, Moutin, Enora
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9773256/
https://www.ncbi.nlm.nih.gov/pubmed/36570823
http://dx.doi.org/10.3389/fnins.2022.1081010
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author Bouquier, Nathalie
Sakkaki, Sophie
Raynaud, Fabrice
Hemonnot-Girard, Anne-Laure
Seube, Vincent
Compan, Vincent
Bertaso, Federica
Perroy, Julie
Moutin, Enora
author_facet Bouquier, Nathalie
Sakkaki, Sophie
Raynaud, Fabrice
Hemonnot-Girard, Anne-Laure
Seube, Vincent
Compan, Vincent
Bertaso, Federica
Perroy, Julie
Moutin, Enora
author_sort Bouquier, Nathalie
collection PubMed
description BACKGROUND: Shank3 is a scaffolding protein essential for the organization and function of the glutamatergic postsynapse. Monogenic mutations in SHANK3 gene are among the leading genetic causes of Autism Spectrum Disorders (ASD). The multiplicity of Shank3 isoforms seems to generate as much functional diversity and yet, there are no tools to study endogenous Shank3 proteins in an isoform-specific manner. METHODS: In this study, we created a novel transgenic mouse line, the Shank3(Venus/Venus) knock in mouse, which allows to monitor the endogenous expression of the major Shank3 isoform in the brain, the full-length Shank3a isoform. RESULTS: We show that the endogenous Venus-Shank3a protein is localized in spines and is mainly expressed in the striatum, hippocampus and cortex of the developing and adult brain. We show that Shank3(Venus/+) and Shank3(Venus/Venus) mice have no behavioral deficiency. We further crossed Shank3(Venus/Venus) mice with Shank3(ΔC/ΔC) mice, a model of ASD, to track the Venus-tagged wild-type copy of Shank3a in physiological (Shank3(Venus/+)) and pathological (Shank3(Venus/ΔC)) conditions. We report a developmental delay in brain expression of the Venus-Shank3a isoform in Shank3(Venus/ΔC) mice, compared to Shank3(Venus/+) control mice. CONCLUSION: Altogether, our results show that the Shank3(Venus/Venus) mouse line is a powerful tool to study endogenous Shank3a expression, in physiological conditions and in ASD.
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spelling pubmed-97732562022-12-23 The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a Bouquier, Nathalie Sakkaki, Sophie Raynaud, Fabrice Hemonnot-Girard, Anne-Laure Seube, Vincent Compan, Vincent Bertaso, Federica Perroy, Julie Moutin, Enora Front Neurosci Neuroscience BACKGROUND: Shank3 is a scaffolding protein essential for the organization and function of the glutamatergic postsynapse. Monogenic mutations in SHANK3 gene are among the leading genetic causes of Autism Spectrum Disorders (ASD). The multiplicity of Shank3 isoforms seems to generate as much functional diversity and yet, there are no tools to study endogenous Shank3 proteins in an isoform-specific manner. METHODS: In this study, we created a novel transgenic mouse line, the Shank3(Venus/Venus) knock in mouse, which allows to monitor the endogenous expression of the major Shank3 isoform in the brain, the full-length Shank3a isoform. RESULTS: We show that the endogenous Venus-Shank3a protein is localized in spines and is mainly expressed in the striatum, hippocampus and cortex of the developing and adult brain. We show that Shank3(Venus/+) and Shank3(Venus/Venus) mice have no behavioral deficiency. We further crossed Shank3(Venus/Venus) mice with Shank3(ΔC/ΔC) mice, a model of ASD, to track the Venus-tagged wild-type copy of Shank3a in physiological (Shank3(Venus/+)) and pathological (Shank3(Venus/ΔC)) conditions. We report a developmental delay in brain expression of the Venus-Shank3a isoform in Shank3(Venus/ΔC) mice, compared to Shank3(Venus/+) control mice. CONCLUSION: Altogether, our results show that the Shank3(Venus/Venus) mouse line is a powerful tool to study endogenous Shank3a expression, in physiological conditions and in ASD. Frontiers Media S.A. 2022-12-08 /pmc/articles/PMC9773256/ /pubmed/36570823 http://dx.doi.org/10.3389/fnins.2022.1081010 Text en Copyright © 2022 Bouquier, Sakkaki, Raynaud, Hemonnot-Girard, Seube, Compan, Bertaso, Perroy and Moutin. 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
Bouquier, Nathalie
Sakkaki, Sophie
Raynaud, Fabrice
Hemonnot-Girard, Anne-Laure
Seube, Vincent
Compan, Vincent
Bertaso, Federica
Perroy, Julie
Moutin, Enora
The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title_full The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title_fullStr The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title_full_unstemmed The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title_short The Shank3(Venus/Venus) knock in mouse enables isoform-specific functional studies of Shank3a
title_sort shank3(venus/venus) knock in mouse enables isoform-specific functional studies of shank3a
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9773256/
https://www.ncbi.nlm.nih.gov/pubmed/36570823
http://dx.doi.org/10.3389/fnins.2022.1081010
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