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K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)

Hyperpolarization-activated, cyclic nucleotide sensitive (HCN) channels underlie the pacemaker current I(f), which plays an essential role in spontaneous cardiac activity. HCN channel subunits (HCN1-4) are believed to be modulated by additional regulatory proteins, which still have to be identified....

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Detalles Bibliográficos
Autores principales: Michels, Guido, Er, Fikret, Khan, Ismail F., Endres-Becker, Jeannette, Brandt, Mathias C., Gassanov, Natig, Johns, David C., Hoppe, Uta C.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2204056/
https://www.ncbi.nlm.nih.gov/pubmed/18231597
http://dx.doi.org/10.1371/journal.pone.0001511
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author Michels, Guido
Er, Fikret
Khan, Ismail F.
Endres-Becker, Jeannette
Brandt, Mathias C.
Gassanov, Natig
Johns, David C.
Hoppe, Uta C.
author_facet Michels, Guido
Er, Fikret
Khan, Ismail F.
Endres-Becker, Jeannette
Brandt, Mathias C.
Gassanov, Natig
Johns, David C.
Hoppe, Uta C.
author_sort Michels, Guido
collection PubMed
description Hyperpolarization-activated, cyclic nucleotide sensitive (HCN) channels underlie the pacemaker current I(f), which plays an essential role in spontaneous cardiac activity. HCN channel subunits (HCN1-4) are believed to be modulated by additional regulatory proteins, which still have to be identified. Using biochemistry, molecularbiology and electrophysiology methods we demonstrate a protein-protein interaction between HCN2 and the K(+) channel regulator protein 1, named KCR1. In coimmunoprecipitation experiments we show that KCR1 and HCN2 proteins are able to associate. Heterologously expressed HCN2 whole-cell current density was significantly decreased by KCR1. KCR1 profoundly suppressed I(HCN2) single-channel activity, indicating a functional interaction between KCR1 and the HCN2 channel subunit. Endogenous KCR1 expression could be detected in adult and neonatal rat ventriculocytes. Adenoviral-mediated overexpression of KCR1 in rat cardiomyocytes (i) reduced I(f) whole-cell currents, (ii) suppressed most single-channel gating parameters, (iii) altered the activation kinetics, (iv) suppressed spontaneous action potential activity, and (v) the beating rate. More importantly, siRNA-based knock-down of endogenous KCR1 increased the native I(f) current size and single-channel activity and accelerated spontaneous beating rate, supporting an inhibitory action of endogenous KCR1 on native I(f). Our observations demonstrate for the first time that KCR1 modulates I(HCN2)/I(f) channel gating and indicate that KCR1 serves as a regulator of cardiac automaticity.
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spelling pubmed-22040562008-01-30 K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f) Michels, Guido Er, Fikret Khan, Ismail F. Endres-Becker, Jeannette Brandt, Mathias C. Gassanov, Natig Johns, David C. Hoppe, Uta C. PLoS One Research Article Hyperpolarization-activated, cyclic nucleotide sensitive (HCN) channels underlie the pacemaker current I(f), which plays an essential role in spontaneous cardiac activity. HCN channel subunits (HCN1-4) are believed to be modulated by additional regulatory proteins, which still have to be identified. Using biochemistry, molecularbiology and electrophysiology methods we demonstrate a protein-protein interaction between HCN2 and the K(+) channel regulator protein 1, named KCR1. In coimmunoprecipitation experiments we show that KCR1 and HCN2 proteins are able to associate. Heterologously expressed HCN2 whole-cell current density was significantly decreased by KCR1. KCR1 profoundly suppressed I(HCN2) single-channel activity, indicating a functional interaction between KCR1 and the HCN2 channel subunit. Endogenous KCR1 expression could be detected in adult and neonatal rat ventriculocytes. Adenoviral-mediated overexpression of KCR1 in rat cardiomyocytes (i) reduced I(f) whole-cell currents, (ii) suppressed most single-channel gating parameters, (iii) altered the activation kinetics, (iv) suppressed spontaneous action potential activity, and (v) the beating rate. More importantly, siRNA-based knock-down of endogenous KCR1 increased the native I(f) current size and single-channel activity and accelerated spontaneous beating rate, supporting an inhibitory action of endogenous KCR1 on native I(f). Our observations demonstrate for the first time that KCR1 modulates I(HCN2)/I(f) channel gating and indicate that KCR1 serves as a regulator of cardiac automaticity. Public Library of Science 2008-01-30 /pmc/articles/PMC2204056/ /pubmed/18231597 http://dx.doi.org/10.1371/journal.pone.0001511 Text en Michels et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Michels, Guido
Er, Fikret
Khan, Ismail F.
Endres-Becker, Jeannette
Brandt, Mathias C.
Gassanov, Natig
Johns, David C.
Hoppe, Uta C.
K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title_full K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title_fullStr K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title_full_unstemmed K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title_short K(+) Channel Regulator KCR1 Suppresses Heart Rhythm by Modulating the Pacemaker Current I(f)
title_sort k(+) channel regulator kcr1 suppresses heart rhythm by modulating the pacemaker current i(f)
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2204056/
https://www.ncbi.nlm.nih.gov/pubmed/18231597
http://dx.doi.org/10.1371/journal.pone.0001511
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