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Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State

BACKGROUND: Na(v)1.5, which is encoded by the SCN5A gene, is the predominant voltage-gated Na(+) channel in the heart. Several mutations of this gene have been identified and reported to be involved in several cardiac rhythm disorders, including type 3 long QT interval syndrome, that can cause sudde...

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Autores principales: Plumereau, Quentin, Theriault, Olivier, Pouliot, Valérie, Moreau, Adrien, Morel, Elodie, Fressart, Véronique, Denjoy, Isabelle, Delinière, Antoine, Bessière, Francis, Chevalier, Philippe, Gamal El-Din, Tamer M., Chahine, Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984979/
https://www.ncbi.nlm.nih.gov/pubmed/33778442
http://dx.doi.org/10.1016/j.cjco.2020.09.023
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author Plumereau, Quentin
Theriault, Olivier
Pouliot, Valérie
Moreau, Adrien
Morel, Elodie
Fressart, Véronique
Denjoy, Isabelle
Delinière, Antoine
Bessière, Francis
Chevalier, Philippe
Gamal El-Din, Tamer M.
Chahine, Mohamed
author_facet Plumereau, Quentin
Theriault, Olivier
Pouliot, Valérie
Moreau, Adrien
Morel, Elodie
Fressart, Véronique
Denjoy, Isabelle
Delinière, Antoine
Bessière, Francis
Chevalier, Philippe
Gamal El-Din, Tamer M.
Chahine, Mohamed
author_sort Plumereau, Quentin
collection PubMed
description BACKGROUND: Na(v)1.5, which is encoded by the SCN5A gene, is the predominant voltage-gated Na(+) channel in the heart. Several mutations of this gene have been identified and reported to be involved in several cardiac rhythm disorders, including type 3 long QT interval syndrome, that can cause sudden cardiac death. We analyzed the biophysical properties of 2 novel variants of the Na(v)1.5 channel (Q1491H and G1481V) detected in 5- and 12-week-old infants diagnosed with a prolonged QT interval. METHODS: The Na(v)1.5 wild-type and the Q1491H and G1481V mutant channels were reproduced in vitro. Wild-type or mutant channels were cotransfected in human embryonic kidney (HEK) 293 cells with the beta 1 regulatory subunit. Na(+) currents were recorded using the whole-cell configuration of the patch-clamp technique. RESULTS: The Q1491H mutant channel exhibited a lower current density, a persistent Na(+) current, an enhanced window current due to a +20-mV shift of steady-state inactivation, a +10-mV shift of steady-state activation, a faster onset of slow inactivation, and a recovery from fast inactivation with fast and slow time constants of recovery. The G1481V mutant channel exhibited an increase in current density and a +7-mV shift of steady-state inactivation. The observed defects are characteristic of gain-of-function mutations typical of type 3 long QT interval syndrome. CONCLUSIONS: The 5- and 12-week-old infants displayed prolonged QT intervals. Our analyses of the Q1491H and G1481V mutations correlated with the clinical diagnosis. The observed biophysical dysfunctions associated with both mutations were most likely responsible for the sudden deaths of the 2 infants.
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spelling pubmed-79849792021-03-25 Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State Plumereau, Quentin Theriault, Olivier Pouliot, Valérie Moreau, Adrien Morel, Elodie Fressart, Véronique Denjoy, Isabelle Delinière, Antoine Bessière, Francis Chevalier, Philippe Gamal El-Din, Tamer M. Chahine, Mohamed CJC Open Original Article BACKGROUND: Na(v)1.5, which is encoded by the SCN5A gene, is the predominant voltage-gated Na(+) channel in the heart. Several mutations of this gene have been identified and reported to be involved in several cardiac rhythm disorders, including type 3 long QT interval syndrome, that can cause sudden cardiac death. We analyzed the biophysical properties of 2 novel variants of the Na(v)1.5 channel (Q1491H and G1481V) detected in 5- and 12-week-old infants diagnosed with a prolonged QT interval. METHODS: The Na(v)1.5 wild-type and the Q1491H and G1481V mutant channels were reproduced in vitro. Wild-type or mutant channels were cotransfected in human embryonic kidney (HEK) 293 cells with the beta 1 regulatory subunit. Na(+) currents were recorded using the whole-cell configuration of the patch-clamp technique. RESULTS: The Q1491H mutant channel exhibited a lower current density, a persistent Na(+) current, an enhanced window current due to a +20-mV shift of steady-state inactivation, a +10-mV shift of steady-state activation, a faster onset of slow inactivation, and a recovery from fast inactivation with fast and slow time constants of recovery. The G1481V mutant channel exhibited an increase in current density and a +7-mV shift of steady-state inactivation. The observed defects are characteristic of gain-of-function mutations typical of type 3 long QT interval syndrome. CONCLUSIONS: The 5- and 12-week-old infants displayed prolonged QT intervals. Our analyses of the Q1491H and G1481V mutations correlated with the clinical diagnosis. The observed biophysical dysfunctions associated with both mutations were most likely responsible for the sudden deaths of the 2 infants. Elsevier 2020-10-05 /pmc/articles/PMC7984979/ /pubmed/33778442 http://dx.doi.org/10.1016/j.cjco.2020.09.023 Text en © 2020 Canadian Cardiovascular Society. Published by Elsevier Inc. http://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/).
spellingShingle Original Article
Plumereau, Quentin
Theriault, Olivier
Pouliot, Valérie
Moreau, Adrien
Morel, Elodie
Fressart, Véronique
Denjoy, Isabelle
Delinière, Antoine
Bessière, Francis
Chevalier, Philippe
Gamal El-Din, Tamer M.
Chahine, Mohamed
Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title_full Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title_fullStr Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title_full_unstemmed Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title_short Novel G1481V and Q1491H SCN5A Mutations Linked to Long QT Syndrome Destabilize the Nav1.5 Inactivation State
title_sort novel g1481v and q1491h scn5a mutations linked to long qt syndrome destabilize the nav1.5 inactivation state
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984979/
https://www.ncbi.nlm.nih.gov/pubmed/33778442
http://dx.doi.org/10.1016/j.cjco.2020.09.023
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