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Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel

INTRODUCTION: A major pathophysiological hypothesis of schizophrenia states an increased activity of glutamatergic neurons leading to an imbalance of neural excitation and inhibition (E/I-imbalance). One potential molecular mechanism of E/I-imbalance is a dysfunction of voltage-gated sodium channels...

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Autores principales: Suslova, M., Hautvast, P., Gaebler, A., Lampert, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cambridge University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9568033/
http://dx.doi.org/10.1192/j.eurpsy.2022.1967
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author Suslova, M.
Hautvast, P.
Gaebler, A.
Lampert, A.
author_facet Suslova, M.
Hautvast, P.
Gaebler, A.
Lampert, A.
author_sort Suslova, M.
collection PubMed
description INTRODUCTION: A major pathophysiological hypothesis of schizophrenia states an increased activity of glutamatergic neurons leading to an imbalance of neural excitation and inhibition (E/I-imbalance). One potential molecular mechanism of E/I-imbalance is a dysfunction of voltage-gated sodium channels, which are crucial for the generation of action potentials, the fundamental event of neuronal excitation. Indeed, patients with schizophrenia exhibit an increased burden of rare exonic variants of sodium channel genes, but the literature describing their electrophysiological effect is scarce. OBJECTIVES: The aim of this project is to assess the functional impact of three mutations of the Sodium Voltage-Gated Channel Alpha Subunit 2 (SCN2A) gene / Na(V)1.2 channel which were identified in four patients with schizophrenia, using a heterologous expression system. METHODS: Three variants of the human SCN2A gene (R850P, V1282F and S1656P) were created using site-directed mutagenesis. HEK293T cells transfected with either the mutant or wild type constructs are being investigated by voltage-clamp technique, applying activation, steady-state fast inactivation, use dependency and ramp protocols. RESULTS: All three mutated constructs were successfully created. Preliminary recordings from the V1282F mutant indicate a shift of both the activation and steady-state fast inactivation to the hyperpolarized direction. CONCLUSIONS: In a subgroup of patients, E/I imbalance may be a consequence of Nav1.2 mutations leading to increased excitability of glutamatergic neurons. By integrating insights from different mutations we aim to identify traits of a potentially shared disease pathway which may provide a basis for the development of novel therapeutics. DISCLOSURE: No significant relationships.
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spelling pubmed-95680332022-10-17 Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel Suslova, M. Hautvast, P. Gaebler, A. Lampert, A. Eur Psychiatry Abstract INTRODUCTION: A major pathophysiological hypothesis of schizophrenia states an increased activity of glutamatergic neurons leading to an imbalance of neural excitation and inhibition (E/I-imbalance). One potential molecular mechanism of E/I-imbalance is a dysfunction of voltage-gated sodium channels, which are crucial for the generation of action potentials, the fundamental event of neuronal excitation. Indeed, patients with schizophrenia exhibit an increased burden of rare exonic variants of sodium channel genes, but the literature describing their electrophysiological effect is scarce. OBJECTIVES: The aim of this project is to assess the functional impact of three mutations of the Sodium Voltage-Gated Channel Alpha Subunit 2 (SCN2A) gene / Na(V)1.2 channel which were identified in four patients with schizophrenia, using a heterologous expression system. METHODS: Three variants of the human SCN2A gene (R850P, V1282F and S1656P) were created using site-directed mutagenesis. HEK293T cells transfected with either the mutant or wild type constructs are being investigated by voltage-clamp technique, applying activation, steady-state fast inactivation, use dependency and ramp protocols. RESULTS: All three mutated constructs were successfully created. Preliminary recordings from the V1282F mutant indicate a shift of both the activation and steady-state fast inactivation to the hyperpolarized direction. CONCLUSIONS: In a subgroup of patients, E/I imbalance may be a consequence of Nav1.2 mutations leading to increased excitability of glutamatergic neurons. By integrating insights from different mutations we aim to identify traits of a potentially shared disease pathway which may provide a basis for the development of novel therapeutics. DISCLOSURE: No significant relationships. Cambridge University Press 2022-09-01 /pmc/articles/PMC9568033/ http://dx.doi.org/10.1192/j.eurpsy.2022.1967 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Abstract
Suslova, M.
Hautvast, P.
Gaebler, A.
Lampert, A.
Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title_full Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title_fullStr Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title_full_unstemmed Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title_short Electrophysiological characterization of schizophrenia-associated variants in NaV1.2 sodium channel
title_sort electrophysiological characterization of schizophrenia-associated variants in nav1.2 sodium channel
topic Abstract
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9568033/
http://dx.doi.org/10.1192/j.eurpsy.2022.1967
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