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Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels

We measured unidirectional K(+) in- and efflux through an inward rectifier K channel (IRK1) expressed in Xenopus oocytes. The ratio of these unidirectional fluxes differed significantly from expectations based on independent ion movement. In an extracellular solution with a K(+) concentration of 25...

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Autores principales: Stampe, Per, Arreola, Jorge, Pérez-Cornejo, Patricia, Begenisich, Ted
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1998
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229430/
https://www.ncbi.nlm.nih.gov/pubmed/9758865
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author Stampe, Per
Arreola, Jorge
Pérez-Cornejo, Patricia
Begenisich, Ted
author_facet Stampe, Per
Arreola, Jorge
Pérez-Cornejo, Patricia
Begenisich, Ted
author_sort Stampe, Per
collection PubMed
description We measured unidirectional K(+) in- and efflux through an inward rectifier K channel (IRK1) expressed in Xenopus oocytes. The ratio of these unidirectional fluxes differed significantly from expectations based on independent ion movement. In an extracellular solution with a K(+) concentration of 25 mM, the data were described by a Ussing flux-ratio exponent, n′, of ∼2.2 and was constant over a voltage range from −50 to −25 mV. This result indicates that the pore of IRK1 channels may be simultaneously occupied by at least three ions. The IRK1 n′ value of 2.2 is significantly smaller than the value of 3.5 obtained for Shaker K channels under identical conditions. To determine if other permeation properties that reflect multi-ion behavior differed between these two channel types, we measured the conductance (at 0 mV) of single IRK1 channels as a function of symmetrical K(+) concentration. The conductance could be fit by a saturating hyperbola with a half-saturation K(+) activity of 40 mM, substantially less than the reported value of 300 mM for Shaker K channels. We investigated the ability of simple permeation models based on absolute reaction rate theory to simulate IRK1 current–voltage, conductance, and flux-ratio data. Certain classes of four-barrier, three-site permeation models are inconsistent with the data, but models with high lateral barriers and a deep central well were able to account for the flux-ratio and single channel data. We conclude that while the pore in IRK1 and Shaker channels share important similarities, including K(+) selectivity and multi-ion occupancy, they differ in other properties, including the sensitivity of pore conductance to K(+) concentration, and may differ in the number of K(+) ions that can simultaneously occupy the pore: IRK1 channels may contain three ions, but the pore in Shaker channels can accommodate four or more ions.
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spelling pubmed-22294302008-04-22 Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels Stampe, Per Arreola, Jorge Pérez-Cornejo, Patricia Begenisich, Ted J Gen Physiol Article We measured unidirectional K(+) in- and efflux through an inward rectifier K channel (IRK1) expressed in Xenopus oocytes. The ratio of these unidirectional fluxes differed significantly from expectations based on independent ion movement. In an extracellular solution with a K(+) concentration of 25 mM, the data were described by a Ussing flux-ratio exponent, n′, of ∼2.2 and was constant over a voltage range from −50 to −25 mV. This result indicates that the pore of IRK1 channels may be simultaneously occupied by at least three ions. The IRK1 n′ value of 2.2 is significantly smaller than the value of 3.5 obtained for Shaker K channels under identical conditions. To determine if other permeation properties that reflect multi-ion behavior differed between these two channel types, we measured the conductance (at 0 mV) of single IRK1 channels as a function of symmetrical K(+) concentration. The conductance could be fit by a saturating hyperbola with a half-saturation K(+) activity of 40 mM, substantially less than the reported value of 300 mM for Shaker K channels. We investigated the ability of simple permeation models based on absolute reaction rate theory to simulate IRK1 current–voltage, conductance, and flux-ratio data. Certain classes of four-barrier, three-site permeation models are inconsistent with the data, but models with high lateral barriers and a deep central well were able to account for the flux-ratio and single channel data. We conclude that while the pore in IRK1 and Shaker channels share important similarities, including K(+) selectivity and multi-ion occupancy, they differ in other properties, including the sensitivity of pore conductance to K(+) concentration, and may differ in the number of K(+) ions that can simultaneously occupy the pore: IRK1 channels may contain three ions, but the pore in Shaker channels can accommodate four or more ions. The Rockefeller University Press 1998-10-01 /pmc/articles/PMC2229430/ /pubmed/9758865 Text en 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 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Article
Stampe, Per
Arreola, Jorge
Pérez-Cornejo, Patricia
Begenisich, Ted
Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title_full Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title_fullStr Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title_full_unstemmed Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title_short Nonindependent K(+) Movement through the Pore in IRK1 Potassium Channels
title_sort nonindependent k(+) movement through the pore in irk1 potassium channels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229430/
https://www.ncbi.nlm.nih.gov/pubmed/9758865
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