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Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights

Brugada Syndrome (BrS) is a rare inherited cardiac arrhythmia causing potentially fatal ventricular tachycardia or fibrillation, mainly occurring during rest or sleep in young individuals without heart structural issues. It increases the risk of sudden cardiac death, and its characteristic feature i...

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Autores principales: Frosio, Anthony, Micaglio, Emanuele, Polsinelli, Ivan, Calamaio, Serena, Melgari, Dario, Prevostini, Rachele, Ghiroldi, Andrea, Binda, Anna, Carrera, Paola, Villa, Marco, Mastrocinque, Flavio, Presi, Silvia, Salerno, Raffaele, Boccellino, Antonio, Anastasia, Luigi, Ciconte, Giuseppe, Ricagno, Stefano, Pappone, Carlo, Rivolta, Ilaria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10606416/
https://www.ncbi.nlm.nih.gov/pubmed/37894777
http://dx.doi.org/10.3390/ijms242015089
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author Frosio, Anthony
Micaglio, Emanuele
Polsinelli, Ivan
Calamaio, Serena
Melgari, Dario
Prevostini, Rachele
Ghiroldi, Andrea
Binda, Anna
Carrera, Paola
Villa, Marco
Mastrocinque, Flavio
Presi, Silvia
Salerno, Raffaele
Boccellino, Antonio
Anastasia, Luigi
Ciconte, Giuseppe
Ricagno, Stefano
Pappone, Carlo
Rivolta, Ilaria
author_facet Frosio, Anthony
Micaglio, Emanuele
Polsinelli, Ivan
Calamaio, Serena
Melgari, Dario
Prevostini, Rachele
Ghiroldi, Andrea
Binda, Anna
Carrera, Paola
Villa, Marco
Mastrocinque, Flavio
Presi, Silvia
Salerno, Raffaele
Boccellino, Antonio
Anastasia, Luigi
Ciconte, Giuseppe
Ricagno, Stefano
Pappone, Carlo
Rivolta, Ilaria
author_sort Frosio, Anthony
collection PubMed
description Brugada Syndrome (BrS) is a rare inherited cardiac arrhythmia causing potentially fatal ventricular tachycardia or fibrillation, mainly occurring during rest or sleep in young individuals without heart structural issues. It increases the risk of sudden cardiac death, and its characteristic feature is an abnormal ST segment elevation on the ECG. While BrS has diverse genetic origins, a subset of cases can be conducted to mutations in the SCN5A gene, which encodes for the Nav1.5 sodium channel. Our study focused on three novel SCN5A mutations (p.A344S, p.N347K, and p.D349N) found in unrelated BrS families. Using patch clamp experiments, we found that these mutations disrupted sodium currents: p.A344S reduced current density, while p.N347K and p.D349N completely abolished it, leading to altered voltage dependence and inactivation kinetics when co-expressed with normal channels. We also explored the effects of mexiletine treatment, which can modulate ion channel function. Interestingly, the p.N347K and p.D349N mutations responded well to the treatment, rescuing the current density, while p.A344S showed a limited response. Structural analysis revealed these mutations were positioned in key regions of the channel, impacting its stability and function. This research deepens our understanding of BrS by uncovering the complex relationship between genetic mutations, ion channel behavior, and potential therapeutic interventions.
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spelling pubmed-106064162023-10-28 Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights Frosio, Anthony Micaglio, Emanuele Polsinelli, Ivan Calamaio, Serena Melgari, Dario Prevostini, Rachele Ghiroldi, Andrea Binda, Anna Carrera, Paola Villa, Marco Mastrocinque, Flavio Presi, Silvia Salerno, Raffaele Boccellino, Antonio Anastasia, Luigi Ciconte, Giuseppe Ricagno, Stefano Pappone, Carlo Rivolta, Ilaria Int J Mol Sci Article Brugada Syndrome (BrS) is a rare inherited cardiac arrhythmia causing potentially fatal ventricular tachycardia or fibrillation, mainly occurring during rest or sleep in young individuals without heart structural issues. It increases the risk of sudden cardiac death, and its characteristic feature is an abnormal ST segment elevation on the ECG. While BrS has diverse genetic origins, a subset of cases can be conducted to mutations in the SCN5A gene, which encodes for the Nav1.5 sodium channel. Our study focused on three novel SCN5A mutations (p.A344S, p.N347K, and p.D349N) found in unrelated BrS families. Using patch clamp experiments, we found that these mutations disrupted sodium currents: p.A344S reduced current density, while p.N347K and p.D349N completely abolished it, leading to altered voltage dependence and inactivation kinetics when co-expressed with normal channels. We also explored the effects of mexiletine treatment, which can modulate ion channel function. Interestingly, the p.N347K and p.D349N mutations responded well to the treatment, rescuing the current density, while p.A344S showed a limited response. Structural analysis revealed these mutations were positioned in key regions of the channel, impacting its stability and function. This research deepens our understanding of BrS by uncovering the complex relationship between genetic mutations, ion channel behavior, and potential therapeutic interventions. MDPI 2023-10-11 /pmc/articles/PMC10606416/ /pubmed/37894777 http://dx.doi.org/10.3390/ijms242015089 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Frosio, Anthony
Micaglio, Emanuele
Polsinelli, Ivan
Calamaio, Serena
Melgari, Dario
Prevostini, Rachele
Ghiroldi, Andrea
Binda, Anna
Carrera, Paola
Villa, Marco
Mastrocinque, Flavio
Presi, Silvia
Salerno, Raffaele
Boccellino, Antonio
Anastasia, Luigi
Ciconte, Giuseppe
Ricagno, Stefano
Pappone, Carlo
Rivolta, Ilaria
Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title_full Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title_fullStr Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title_full_unstemmed Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title_short Unravelling Novel SCN5A Mutations Linked to Brugada Syndrome: Functional, Structural, and Genetic Insights
title_sort unravelling novel scn5a mutations linked to brugada syndrome: functional, structural, and genetic insights
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10606416/
https://www.ncbi.nlm.nih.gov/pubmed/37894777
http://dx.doi.org/10.3390/ijms242015089
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