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The N-linker region of hERG1a upregulates hERG1b potassium channels

A major physiological role of hERG1 (human Ether-á-go-go-Related Gene 1) potassium channels is to repolarize cardiac action potentials. Two isoforms, hERG1a and hERG1b, associate to form the potassium current I(K)(r) in cardiomyocytes. Inherited mutations in hERG1a or hERG1b cause prolonged cardiac...

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Autores principales: Johnson, Ashley A., Crawford, Taylor R., Trudeau, Matthew C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9428852/
https://www.ncbi.nlm.nih.gov/pubmed/35798139
http://dx.doi.org/10.1016/j.jbc.2022.102233
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author Johnson, Ashley A.
Crawford, Taylor R.
Trudeau, Matthew C.
author_facet Johnson, Ashley A.
Crawford, Taylor R.
Trudeau, Matthew C.
author_sort Johnson, Ashley A.
collection PubMed
description A major physiological role of hERG1 (human Ether-á-go-go-Related Gene 1) potassium channels is to repolarize cardiac action potentials. Two isoforms, hERG1a and hERG1b, associate to form the potassium current I(K)(r) in cardiomyocytes. Inherited mutations in hERG1a or hERG1b cause prolonged cardiac repolarization, long QT syndrome, and sudden death arrhythmia. hERG1a subunits assemble with and enhance the number of hERG1b subunits at the plasma membrane, but the mechanism for the increase in hERG1b by hERG1a is not well understood. Here, we report that the hERG1a N-terminal region expressed in trans with hERG1b markedly increased hERG1b currents and increased biotin-labeled hERG1b protein at the membrane surface. hERG1b channels with a deletion of the N-terminal 1b domain did not have a measurable increase in current or biotinylated protein when coexpressed with hERG1a N-terminal regions, indicating that the 1b domain was required for the increase in hERG1b. Using a biochemical pull-down interaction assay and a FRET hybridization experiment, we detected a direct interaction between the hERG1a N-terminal region and the hERG1b N-terminal region. Using engineered deletions and alanine mutagenesis, we identified a short span of amino acids at positions 216 to 220 within the hERG1a “N-linker” region that were necessary for the upregulation of hERG1b. We propose that direct structural interactions between the hERG1a N-linker region and the hERG1b 1b domain increase hERG1b at the plasma membrane. Mechanisms regulating hERG1a and hERG1b are likely critical for cardiac function, may be disrupted by long QT syndrome mutants, and serve as potential targets for therapeutics.
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spelling pubmed-94288522022-09-08 The N-linker region of hERG1a upregulates hERG1b potassium channels Johnson, Ashley A. Crawford, Taylor R. Trudeau, Matthew C. J Biol Chem Research Article A major physiological role of hERG1 (human Ether-á-go-go-Related Gene 1) potassium channels is to repolarize cardiac action potentials. Two isoforms, hERG1a and hERG1b, associate to form the potassium current I(K)(r) in cardiomyocytes. Inherited mutations in hERG1a or hERG1b cause prolonged cardiac repolarization, long QT syndrome, and sudden death arrhythmia. hERG1a subunits assemble with and enhance the number of hERG1b subunits at the plasma membrane, but the mechanism for the increase in hERG1b by hERG1a is not well understood. Here, we report that the hERG1a N-terminal region expressed in trans with hERG1b markedly increased hERG1b currents and increased biotin-labeled hERG1b protein at the membrane surface. hERG1b channels with a deletion of the N-terminal 1b domain did not have a measurable increase in current or biotinylated protein when coexpressed with hERG1a N-terminal regions, indicating that the 1b domain was required for the increase in hERG1b. Using a biochemical pull-down interaction assay and a FRET hybridization experiment, we detected a direct interaction between the hERG1a N-terminal region and the hERG1b N-terminal region. Using engineered deletions and alanine mutagenesis, we identified a short span of amino acids at positions 216 to 220 within the hERG1a “N-linker” region that were necessary for the upregulation of hERG1b. We propose that direct structural interactions between the hERG1a N-linker region and the hERG1b 1b domain increase hERG1b at the plasma membrane. Mechanisms regulating hERG1a and hERG1b are likely critical for cardiac function, may be disrupted by long QT syndrome mutants, and serve as potential targets for therapeutics. American Society for Biochemistry and Molecular Biology 2022-07-05 /pmc/articles/PMC9428852/ /pubmed/35798139 http://dx.doi.org/10.1016/j.jbc.2022.102233 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Johnson, Ashley A.
Crawford, Taylor R.
Trudeau, Matthew C.
The N-linker region of hERG1a upregulates hERG1b potassium channels
title The N-linker region of hERG1a upregulates hERG1b potassium channels
title_full The N-linker region of hERG1a upregulates hERG1b potassium channels
title_fullStr The N-linker region of hERG1a upregulates hERG1b potassium channels
title_full_unstemmed The N-linker region of hERG1a upregulates hERG1b potassium channels
title_short The N-linker region of hERG1a upregulates hERG1b potassium channels
title_sort n-linker region of herg1a upregulates herg1b potassium channels
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9428852/
https://www.ncbi.nlm.nih.gov/pubmed/35798139
http://dx.doi.org/10.1016/j.jbc.2022.102233
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