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Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits

Native myocardial voltage-gated sodium (Na(V)) channels function in macromolecular complexes comprising a pore-forming (α) subunit and multiple accessory proteins. Here, we investigated the impact of accessory Na(V)β1 and Na(V)β3 subunits on the functional effects of 2 well-known class Ib antiarrhyt...

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Autores principales: Zhu, Wandi, Wang, Wei, Angsutararux, Paweorn, Mellor, Rebecca L., Isom, Lori L., Nerbonne, Jeanne M., Silva, Jonathan R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410097/
https://www.ncbi.nlm.nih.gov/pubmed/34156986
http://dx.doi.org/10.1172/jci.insight.143092
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author Zhu, Wandi
Wang, Wei
Angsutararux, Paweorn
Mellor, Rebecca L.
Isom, Lori L.
Nerbonne, Jeanne M.
Silva, Jonathan R.
author_facet Zhu, Wandi
Wang, Wei
Angsutararux, Paweorn
Mellor, Rebecca L.
Isom, Lori L.
Nerbonne, Jeanne M.
Silva, Jonathan R.
author_sort Zhu, Wandi
collection PubMed
description Native myocardial voltage-gated sodium (Na(V)) channels function in macromolecular complexes comprising a pore-forming (α) subunit and multiple accessory proteins. Here, we investigated the impact of accessory Na(V)β1 and Na(V)β3 subunits on the functional effects of 2 well-known class Ib antiarrhythmics, lidocaine and ranolazine, on the predominant Na(V) channel α subunit, Na(V)1.5, expressed in the mammalian heart. We showed that both drugs stabilized the activated conformation of the voltage sensor of domain-III (DIII-VSD) in Na(V)1.5. In the presence of Na(V)β1, the effect of lidocaine on the DIII-VSD was enhanced, whereas the effect of ranolazine was abolished. Mutating the main class Ib drug-binding site, F1760, affected but did not abolish the modulation of drug block by Na(V)β1/β3. Recordings from adult mouse ventricular myocytes demonstrated that loss of Scn1b (Na(V)β1) differentially affected the potencies of lidocaine and ranolazine. In vivo experiments revealed distinct ECG responses to i.p. injection of ranolazine or lidocaine in WT and Scn1b-null animals, suggesting that Na(V)β1 modulated drug responses at the whole-heart level. In the human heart, we found that SCN1B transcript expression was 3 times higher in the atria than ventricles, differences that could, in combination with inherited or acquired cardiovascular disease, dramatically affect patient response to class Ib antiarrhythmic therapies.
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spelling pubmed-84100972021-09-07 Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits Zhu, Wandi Wang, Wei Angsutararux, Paweorn Mellor, Rebecca L. Isom, Lori L. Nerbonne, Jeanne M. Silva, Jonathan R. JCI Insight Research Article Native myocardial voltage-gated sodium (Na(V)) channels function in macromolecular complexes comprising a pore-forming (α) subunit and multiple accessory proteins. Here, we investigated the impact of accessory Na(V)β1 and Na(V)β3 subunits on the functional effects of 2 well-known class Ib antiarrhythmics, lidocaine and ranolazine, on the predominant Na(V) channel α subunit, Na(V)1.5, expressed in the mammalian heart. We showed that both drugs stabilized the activated conformation of the voltage sensor of domain-III (DIII-VSD) in Na(V)1.5. In the presence of Na(V)β1, the effect of lidocaine on the DIII-VSD was enhanced, whereas the effect of ranolazine was abolished. Mutating the main class Ib drug-binding site, F1760, affected but did not abolish the modulation of drug block by Na(V)β1/β3. Recordings from adult mouse ventricular myocytes demonstrated that loss of Scn1b (Na(V)β1) differentially affected the potencies of lidocaine and ranolazine. In vivo experiments revealed distinct ECG responses to i.p. injection of ranolazine or lidocaine in WT and Scn1b-null animals, suggesting that Na(V)β1 modulated drug responses at the whole-heart level. In the human heart, we found that SCN1B transcript expression was 3 times higher in the atria than ventricles, differences that could, in combination with inherited or acquired cardiovascular disease, dramatically affect patient response to class Ib antiarrhythmic therapies. American Society for Clinical Investigation 2021-08-09 /pmc/articles/PMC8410097/ /pubmed/34156986 http://dx.doi.org/10.1172/jci.insight.143092 Text en © 2021 Zhu et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Zhu, Wandi
Wang, Wei
Angsutararux, Paweorn
Mellor, Rebecca L.
Isom, Lori L.
Nerbonne, Jeanne M.
Silva, Jonathan R.
Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title_full Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title_fullStr Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title_full_unstemmed Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title_short Modulation of the effects of class Ib antiarrhythmics on cardiac Na(V)1.5-encoded channels by accessory Na(V)β subunits
title_sort modulation of the effects of class ib antiarrhythmics on cardiac na(v)1.5-encoded channels by accessory na(v)β subunits
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410097/
https://www.ncbi.nlm.nih.gov/pubmed/34156986
http://dx.doi.org/10.1172/jci.insight.143092
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