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Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels

We have examined the voltage dependence of external TEA block of Shaker K(+) channels over a range of internal K(+) concentrations from 2 to 135 mM. We found that the concentration dependence of external TEA block in low internal K(+) solutions could not be described by a single TEA binding affinity...

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Autores principales: Thompson, Jill, Begenisich, Ted
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2234082/
https://www.ncbi.nlm.nih.gov/pubmed/15897293
http://dx.doi.org/10.1085/jgp.200509251
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author Thompson, Jill
Begenisich, Ted
author_facet Thompson, Jill
Begenisich, Ted
author_sort Thompson, Jill
collection PubMed
description We have examined the voltage dependence of external TEA block of Shaker K(+) channels over a range of internal K(+) concentrations from 2 to 135 mM. We found that the concentration dependence of external TEA block in low internal K(+) solutions could not be described by a single TEA binding affinity. The deviation from a single TEA binding isotherm was increased at more depolarized membrane voltages. The data were well described by a two-component binding scheme representing two, relatively stable populations of conducting channels that differ in their affinity for external TEA. The relative proportion of these two populations was not much affected by membrane voltage but did depend on the internal K(+) concentration. Low internal K(+) promoted an increase in the fraction of channels with a low TEA affinity. The voltage dependence of the apparent high-affinity TEA binding constant depended on the internal K(+) concentration, becoming almost voltage independent in 5 mM. The K(+) sensitivity of these low- and high-affinity TEA states suggests that they may represent one- and two-ion occupancy states of the selectivity filter, consistent with recent crystallographic results from the bacterial KcsA K(+) channel. We therefore analyzed these data in terms of such a model and found a large (almost 14-fold) difference between the intrinsic TEA affinity of the one-ion and two-ion modes. According to this analysis, the single ion in the one-ion mode (at 0 mV) prefers the inner end of the selectivity filter twofold more than the outer end. This distribution does not change with internal K(+). The two ions in the two-ion mode prefer to occupy the inner end of the selectivity filter at low K(+), but high internal K(+) promotes increased occupancy of the outer sites. Our analysis further suggests that the four K(+) sites in the selectivity filter are spaced between 20 and 25% of the membrane electric field.
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spelling pubmed-22340822008-03-21 Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels Thompson, Jill Begenisich, Ted J Gen Physiol Article We have examined the voltage dependence of external TEA block of Shaker K(+) channels over a range of internal K(+) concentrations from 2 to 135 mM. We found that the concentration dependence of external TEA block in low internal K(+) solutions could not be described by a single TEA binding affinity. The deviation from a single TEA binding isotherm was increased at more depolarized membrane voltages. The data were well described by a two-component binding scheme representing two, relatively stable populations of conducting channels that differ in their affinity for external TEA. The relative proportion of these two populations was not much affected by membrane voltage but did depend on the internal K(+) concentration. Low internal K(+) promoted an increase in the fraction of channels with a low TEA affinity. The voltage dependence of the apparent high-affinity TEA binding constant depended on the internal K(+) concentration, becoming almost voltage independent in 5 mM. The K(+) sensitivity of these low- and high-affinity TEA states suggests that they may represent one- and two-ion occupancy states of the selectivity filter, consistent with recent crystallographic results from the bacterial KcsA K(+) channel. We therefore analyzed these data in terms of such a model and found a large (almost 14-fold) difference between the intrinsic TEA affinity of the one-ion and two-ion modes. According to this analysis, the single ion in the one-ion mode (at 0 mV) prefers the inner end of the selectivity filter twofold more than the outer end. This distribution does not change with internal K(+). The two ions in the two-ion mode prefer to occupy the inner end of the selectivity filter at low K(+), but high internal K(+) promotes increased occupancy of the outer sites. Our analysis further suggests that the four K(+) sites in the selectivity filter are spaced between 20 and 25% of the membrane electric field. The Rockefeller University Press 2005-06 /pmc/articles/PMC2234082/ /pubmed/15897293 http://dx.doi.org/10.1085/jgp.200509251 Text en Copyright © 2005, The Rockefeller University Press 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
Thompson, Jill
Begenisich, Ted
Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title_full Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title_fullStr Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title_full_unstemmed Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title_short Two Stable, Conducting Conformations of the Selectivity Filter in Shaker K(+) Channels
title_sort two stable, conducting conformations of the selectivity filter in shaker k(+) channels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2234082/
https://www.ncbi.nlm.nih.gov/pubmed/15897293
http://dx.doi.org/10.1085/jgp.200509251
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