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Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels

The Ca(2+)-binding protein calmodulin has emerged as a pivotal player in tuning Na(+) channel function, although its impact in vivo remains to be resolved. Here, we identify the role of calmodulin and the Na(V)1.5 interactome in regulating late Na(+) current in cardiomyocytes. We created transgenic...

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Autores principales: Abrams, Jeffrey, Roybal, Daniel, Chakouri, Nourdine, Katchman, Alexander N., Weinberg, Richard, Yang, Lin, Chen, Bi-xing, Zakharov, Sergey I., Hennessey, Jessica A., Avula, Uma Mahesh R., Diaz, Johanna, Wang, Chaojian, Wan, Elaine Y., Pitt, Geoffrey S., Ben-Johny, Manu, Marx, Steven O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7566708/
https://www.ncbi.nlm.nih.gov/pubmed/32870823
http://dx.doi.org/10.1172/jci.insight.141736
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author Abrams, Jeffrey
Roybal, Daniel
Chakouri, Nourdine
Katchman, Alexander N.
Weinberg, Richard
Yang, Lin
Chen, Bi-xing
Zakharov, Sergey I.
Hennessey, Jessica A.
Avula, Uma Mahesh R.
Diaz, Johanna
Wang, Chaojian
Wan, Elaine Y.
Pitt, Geoffrey S.
Ben-Johny, Manu
Marx, Steven O.
author_facet Abrams, Jeffrey
Roybal, Daniel
Chakouri, Nourdine
Katchman, Alexander N.
Weinberg, Richard
Yang, Lin
Chen, Bi-xing
Zakharov, Sergey I.
Hennessey, Jessica A.
Avula, Uma Mahesh R.
Diaz, Johanna
Wang, Chaojian
Wan, Elaine Y.
Pitt, Geoffrey S.
Ben-Johny, Manu
Marx, Steven O.
author_sort Abrams, Jeffrey
collection PubMed
description The Ca(2+)-binding protein calmodulin has emerged as a pivotal player in tuning Na(+) channel function, although its impact in vivo remains to be resolved. Here, we identify the role of calmodulin and the Na(V)1.5 interactome in regulating late Na(+) current in cardiomyocytes. We created transgenic mice with cardiac-specific expression of human Na(V)1.5 channels with alanine substitutions for the IQ motif (IQ/AA). The mutations rendered the channels incapable of binding calmodulin to the C-terminus. The IQ/AA transgenic mice exhibited normal ventricular repolarization without arrhythmias and an absence of increased late Na(+) current. In comparison, transgenic mice expressing a lidocaine-resistant (F1759A) human Na(V)1.5 demonstrated increased late Na(+) current and prolonged repolarization in cardiomyocytes, with spontaneous arrhythmias. To determine regulatory factors that prevent late Na(+) current for the IQ/AA mutant channel, we considered fibroblast growth factor homologous factors (FHFs), which are within the Na(V)1.5 proteomic subdomain shown by proximity labeling in transgenic mice expressing Na(V)1.5 conjugated to ascorbate peroxidase. We found that FGF13 diminished late current of the IQ/AA but not F1759A mutant cardiomyocytes, suggesting that endogenous FHFs may serve to prevent late Na(+) current in mouse cardiomyocytes. Leveraging endogenous mechanisms may furnish an alternative avenue for developing novel pharmacology that selectively blunts late Na(+) current.
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spelling pubmed-75667082020-10-21 Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels Abrams, Jeffrey Roybal, Daniel Chakouri, Nourdine Katchman, Alexander N. Weinberg, Richard Yang, Lin Chen, Bi-xing Zakharov, Sergey I. Hennessey, Jessica A. Avula, Uma Mahesh R. Diaz, Johanna Wang, Chaojian Wan, Elaine Y. Pitt, Geoffrey S. Ben-Johny, Manu Marx, Steven O. JCI Insight Research Article The Ca(2+)-binding protein calmodulin has emerged as a pivotal player in tuning Na(+) channel function, although its impact in vivo remains to be resolved. Here, we identify the role of calmodulin and the Na(V)1.5 interactome in regulating late Na(+) current in cardiomyocytes. We created transgenic mice with cardiac-specific expression of human Na(V)1.5 channels with alanine substitutions for the IQ motif (IQ/AA). The mutations rendered the channels incapable of binding calmodulin to the C-terminus. The IQ/AA transgenic mice exhibited normal ventricular repolarization without arrhythmias and an absence of increased late Na(+) current. In comparison, transgenic mice expressing a lidocaine-resistant (F1759A) human Na(V)1.5 demonstrated increased late Na(+) current and prolonged repolarization in cardiomyocytes, with spontaneous arrhythmias. To determine regulatory factors that prevent late Na(+) current for the IQ/AA mutant channel, we considered fibroblast growth factor homologous factors (FHFs), which are within the Na(V)1.5 proteomic subdomain shown by proximity labeling in transgenic mice expressing Na(V)1.5 conjugated to ascorbate peroxidase. We found that FGF13 diminished late current of the IQ/AA but not F1759A mutant cardiomyocytes, suggesting that endogenous FHFs may serve to prevent late Na(+) current in mouse cardiomyocytes. Leveraging endogenous mechanisms may furnish an alternative avenue for developing novel pharmacology that selectively blunts late Na(+) current. American Society for Clinical Investigation 2020-10-02 /pmc/articles/PMC7566708/ /pubmed/32870823 http://dx.doi.org/10.1172/jci.insight.141736 Text en © 2020 Abrams et al. http://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/.
spellingShingle Research Article
Abrams, Jeffrey
Roybal, Daniel
Chakouri, Nourdine
Katchman, Alexander N.
Weinberg, Richard
Yang, Lin
Chen, Bi-xing
Zakharov, Sergey I.
Hennessey, Jessica A.
Avula, Uma Mahesh R.
Diaz, Johanna
Wang, Chaojian
Wan, Elaine Y.
Pitt, Geoffrey S.
Ben-Johny, Manu
Marx, Steven O.
Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title_full Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title_fullStr Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title_full_unstemmed Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title_short Fibroblast growth factor homologous factors tune arrhythmogenic late Na(V)1.5 current in calmodulin binding–deficient channels
title_sort fibroblast growth factor homologous factors tune arrhythmogenic late na(v)1.5 current in calmodulin binding–deficient channels
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7566708/
https://www.ncbi.nlm.nih.gov/pubmed/32870823
http://dx.doi.org/10.1172/jci.insight.141736
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