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A Xenopus oocyte model system to study action potentials

Action potentials (APs) are the functional units of fast electrical signaling in excitable cells. The upstroke and downstroke of an AP is generated by the competing and asynchronous action of Na(+)- and K(+)-selective voltage-gated conductances. Although a mixture of voltage-gated channels has been...

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Autores principales: Corbin-Leftwich, Aaron, Small, Hannah E., Robinson, Helen H., Villalba-Galea, Carlos A., Boland, Linda M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Rockefeller University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6219683/
https://www.ncbi.nlm.nih.gov/pubmed/30266757
http://dx.doi.org/10.1085/jgp.201812146
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author Corbin-Leftwich, Aaron
Small, Hannah E.
Robinson, Helen H.
Villalba-Galea, Carlos A.
Boland, Linda M.
author_facet Corbin-Leftwich, Aaron
Small, Hannah E.
Robinson, Helen H.
Villalba-Galea, Carlos A.
Boland, Linda M.
author_sort Corbin-Leftwich, Aaron
collection PubMed
description Action potentials (APs) are the functional units of fast electrical signaling in excitable cells. The upstroke and downstroke of an AP is generated by the competing and asynchronous action of Na(+)- and K(+)-selective voltage-gated conductances. Although a mixture of voltage-gated channels has been long recognized to contribute to the generation and temporal characteristics of the AP, understanding how each of these proteins function and are regulated during electrical signaling remains the subject of intense research. AP properties vary among different cellular types because of the expression diversity, subcellular location, and modulation of ion channels. These complexities, in addition to the functional coupling of these proteins by membrane potential, make it challenging to understand the roles of different channels in initiating and “temporally shaping” the AP. Here, to address this problem, we focus our efforts on finding conditions that allow reliable AP recordings from Xenopus laevis oocytes coexpressing Na(+) and K(+) channels. As a proof of principle, we show how the expression of a variety of K(+) channel subtypes can modulate excitability in this minimal model system. This approach raises the prospect of studies on the modulation of APs by pharmacological or biological means with a controlled background of Na(+) and K(+) channel expression.
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spelling pubmed-62196832019-05-05 A Xenopus oocyte model system to study action potentials Corbin-Leftwich, Aaron Small, Hannah E. Robinson, Helen H. Villalba-Galea, Carlos A. Boland, Linda M. J Gen Physiol Research Articles Action potentials (APs) are the functional units of fast electrical signaling in excitable cells. The upstroke and downstroke of an AP is generated by the competing and asynchronous action of Na(+)- and K(+)-selective voltage-gated conductances. Although a mixture of voltage-gated channels has been long recognized to contribute to the generation and temporal characteristics of the AP, understanding how each of these proteins function and are regulated during electrical signaling remains the subject of intense research. AP properties vary among different cellular types because of the expression diversity, subcellular location, and modulation of ion channels. These complexities, in addition to the functional coupling of these proteins by membrane potential, make it challenging to understand the roles of different channels in initiating and “temporally shaping” the AP. Here, to address this problem, we focus our efforts on finding conditions that allow reliable AP recordings from Xenopus laevis oocytes coexpressing Na(+) and K(+) channels. As a proof of principle, we show how the expression of a variety of K(+) channel subtypes can modulate excitability in this minimal model system. This approach raises the prospect of studies on the modulation of APs by pharmacological or biological means with a controlled background of Na(+) and K(+) channel expression. Rockefeller University Press 2018-11-05 /pmc/articles/PMC6219683/ /pubmed/30266757 http://dx.doi.org/10.1085/jgp.201812146 Text en © 2018 Corbin-Leftwich et al. http://www.rupress.org/terms/https://creativecommons.org/licenses/by-nc-sa/4.0/This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms/). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 International license, as described at https://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Research Articles
Corbin-Leftwich, Aaron
Small, Hannah E.
Robinson, Helen H.
Villalba-Galea, Carlos A.
Boland, Linda M.
A Xenopus oocyte model system to study action potentials
title A Xenopus oocyte model system to study action potentials
title_full A Xenopus oocyte model system to study action potentials
title_fullStr A Xenopus oocyte model system to study action potentials
title_full_unstemmed A Xenopus oocyte model system to study action potentials
title_short A Xenopus oocyte model system to study action potentials
title_sort xenopus oocyte model system to study action potentials
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6219683/
https://www.ncbi.nlm.nih.gov/pubmed/30266757
http://dx.doi.org/10.1085/jgp.201812146
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