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Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain

The auxiliary β3-subunit is an important functional regulator of the cardiac sodium channel Nav1.5, and some β3 mutations predispose individuals to cardiac arrhythmias. The β3-subunit uses its transmembrane α-helix and extracellular domain to bind to Nav1.5. Here, we investigated the role of an unus...

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Autores principales: Salvage, Samantha C., Zhu, Wandi, Habib, Zaki F., Hwang, Soyon S., Irons, Jennifer R., Huang, Christopher L. H., Silva, Jonathan R., Jackson, Antony P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6926464/
https://www.ncbi.nlm.nih.gov/pubmed/31659116
http://dx.doi.org/10.1074/jbc.RA119.010283
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author Salvage, Samantha C.
Zhu, Wandi
Habib, Zaki F.
Hwang, Soyon S.
Irons, Jennifer R.
Huang, Christopher L. H.
Silva, Jonathan R.
Jackson, Antony P.
author_facet Salvage, Samantha C.
Zhu, Wandi
Habib, Zaki F.
Hwang, Soyon S.
Irons, Jennifer R.
Huang, Christopher L. H.
Silva, Jonathan R.
Jackson, Antony P.
author_sort Salvage, Samantha C.
collection PubMed
description The auxiliary β3-subunit is an important functional regulator of the cardiac sodium channel Nav1.5, and some β3 mutations predispose individuals to cardiac arrhythmias. The β3-subunit uses its transmembrane α-helix and extracellular domain to bind to Nav1.5. Here, we investigated the role of an unusually located and highly conserved glutamic acid (Glu-176) within the β3 transmembrane region and its potential for functionally synergizing with the β3 extracellular domain (ECD). We substituted Glu-176 with lysine (E176K) in the WT β3-subunit and in a β3-subunit lacking the ECD. Patch-clamp experiments indicated that the E176K substitution does not affect the previously observed β3-dependent depolarizing shift of V(½) of steady-state inactivation but does attenuate the accelerated recovery from inactivation conferred by the WT β3-subunit. Removal of the β3-ECD abrogated both the depolarizing shift of steady-state inactivation and the accelerated recovery, irrespective of the presence or absence of the Glu-176 residue. We found that steady-state inactivation and recovery from inactivation involve movements of the S4 helices within the DIII and DIV voltage sensors in response to membrane potential changes. Voltage-clamp fluorometry revealed that the E176K substitution alters DIII voltage sensor dynamics without affecting DIV. In contrast, removal of the ECD significantly altered the dynamics of both DIII and DIV. These results imply distinct roles for the β3-Glu-176 residue and the β3-ECD in regulating the conformational changes of the voltage sensors that determine channel inactivation and recovery from inactivation.
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spelling pubmed-69264642019-12-24 Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain Salvage, Samantha C. Zhu, Wandi Habib, Zaki F. Hwang, Soyon S. Irons, Jennifer R. Huang, Christopher L. H. Silva, Jonathan R. Jackson, Antony P. J Biol Chem Protein Structure and Folding The auxiliary β3-subunit is an important functional regulator of the cardiac sodium channel Nav1.5, and some β3 mutations predispose individuals to cardiac arrhythmias. The β3-subunit uses its transmembrane α-helix and extracellular domain to bind to Nav1.5. Here, we investigated the role of an unusually located and highly conserved glutamic acid (Glu-176) within the β3 transmembrane region and its potential for functionally synergizing with the β3 extracellular domain (ECD). We substituted Glu-176 with lysine (E176K) in the WT β3-subunit and in a β3-subunit lacking the ECD. Patch-clamp experiments indicated that the E176K substitution does not affect the previously observed β3-dependent depolarizing shift of V(½) of steady-state inactivation but does attenuate the accelerated recovery from inactivation conferred by the WT β3-subunit. Removal of the β3-ECD abrogated both the depolarizing shift of steady-state inactivation and the accelerated recovery, irrespective of the presence or absence of the Glu-176 residue. We found that steady-state inactivation and recovery from inactivation involve movements of the S4 helices within the DIII and DIV voltage sensors in response to membrane potential changes. Voltage-clamp fluorometry revealed that the E176K substitution alters DIII voltage sensor dynamics without affecting DIV. In contrast, removal of the ECD significantly altered the dynamics of both DIII and DIV. These results imply distinct roles for the β3-Glu-176 residue and the β3-ECD in regulating the conformational changes of the voltage sensors that determine channel inactivation and recovery from inactivation. American Society for Biochemistry and Molecular Biology 2019-12-20 2019-10-28 /pmc/articles/PMC6926464/ /pubmed/31659116 http://dx.doi.org/10.1074/jbc.RA119.010283 Text en © 2019 Salvage et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Salvage, Samantha C.
Zhu, Wandi
Habib, Zaki F.
Hwang, Soyon S.
Irons, Jennifer R.
Huang, Christopher L. H.
Silva, Jonathan R.
Jackson, Antony P.
Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title_full Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title_fullStr Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title_full_unstemmed Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title_short Gating control of the cardiac sodium channel Nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
title_sort gating control of the cardiac sodium channel nav1.5 by its β3-subunit involves distinct roles for a transmembrane glutamic acid and the extracellular domain
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6926464/
https://www.ncbi.nlm.nih.gov/pubmed/31659116
http://dx.doi.org/10.1074/jbc.RA119.010283
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