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Permeability Properties of Enac Selectivity Filter Mutants

The epithelial Na(+) channel (ENaC), located in the apical membrane of tight epithelia, allows vectorial Na(+) absorption. The amiloride-sensitive ENaC is highly selective for Na(+) and Li(+) ions. There is growing evidence that the short stretch of amino acid residues (preM2) preceding the putative...

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Autores principales: Kellenberger, Stephan, Auberson, Muriel, Gautschi, Ivan, Schneeberger, Estelle, Schild, Laurent
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2001
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229513/
https://www.ncbi.nlm.nih.gov/pubmed/11723161
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author Kellenberger, Stephan
Auberson, Muriel
Gautschi, Ivan
Schneeberger, Estelle
Schild, Laurent
author_facet Kellenberger, Stephan
Auberson, Muriel
Gautschi, Ivan
Schneeberger, Estelle
Schild, Laurent
author_sort Kellenberger, Stephan
collection PubMed
description The epithelial Na(+) channel (ENaC), located in the apical membrane of tight epithelia, allows vectorial Na(+) absorption. The amiloride-sensitive ENaC is highly selective for Na(+) and Li(+) ions. There is growing evidence that the short stretch of amino acid residues (preM2) preceding the putative second transmembrane domain M2 forms the outer channel pore with the amiloride binding site and the narrow ion-selective region of the pore. We have shown previously that mutations of the αS589 residue in the preM2 segment change the ion selectivity, making the channel permeant to K(+) ions. To understand the molecular basis of this important change in ionic selectivity, we have substituted αS589 with amino acids of different sizes and physicochemical properties. Here, we show that the molecular cutoff of the channel pore for inorganic and organic cations increases with the size of the amino acid residue at position α589, indicating that αS589 mutations enlarge the pore at the selectivity filter. Mutants with an increased permeability to large cations show a decrease in the ENaC unitary conductance of small cations such as Na(+) and Li(+). These findings demonstrate the critical role of the pore size at the αS589 residue for the selectivity properties of ENaC. Our data are consistent with the main chain carbonyl oxygens of the αS589 residues lining the channel pore at the selectivity filter with their side chain pointing away from the pore lumen. We propose that the αS589 side chain is oriented toward the subunit–subunit interface and that substitution of αS589 by larger residues increases the pore diameter by adding extra volume at the subunit–subunit interface.
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spelling pubmed-22295132008-04-21 Permeability Properties of Enac Selectivity Filter Mutants Kellenberger, Stephan Auberson, Muriel Gautschi, Ivan Schneeberger, Estelle Schild, Laurent J Gen Physiol Original Article The epithelial Na(+) channel (ENaC), located in the apical membrane of tight epithelia, allows vectorial Na(+) absorption. The amiloride-sensitive ENaC is highly selective for Na(+) and Li(+) ions. There is growing evidence that the short stretch of amino acid residues (preM2) preceding the putative second transmembrane domain M2 forms the outer channel pore with the amiloride binding site and the narrow ion-selective region of the pore. We have shown previously that mutations of the αS589 residue in the preM2 segment change the ion selectivity, making the channel permeant to K(+) ions. To understand the molecular basis of this important change in ionic selectivity, we have substituted αS589 with amino acids of different sizes and physicochemical properties. Here, we show that the molecular cutoff of the channel pore for inorganic and organic cations increases with the size of the amino acid residue at position α589, indicating that αS589 mutations enlarge the pore at the selectivity filter. Mutants with an increased permeability to large cations show a decrease in the ENaC unitary conductance of small cations such as Na(+) and Li(+). These findings demonstrate the critical role of the pore size at the αS589 residue for the selectivity properties of ENaC. Our data are consistent with the main chain carbonyl oxygens of the αS589 residues lining the channel pore at the selectivity filter with their side chain pointing away from the pore lumen. We propose that the αS589 side chain is oriented toward the subunit–subunit interface and that substitution of αS589 by larger residues increases the pore diameter by adding extra volume at the subunit–subunit interface. The Rockefeller University Press 2001-12-01 /pmc/articles/PMC2229513/ /pubmed/11723161 Text en © 2001 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 Original Article
Kellenberger, Stephan
Auberson, Muriel
Gautschi, Ivan
Schneeberger, Estelle
Schild, Laurent
Permeability Properties of Enac Selectivity Filter Mutants
title Permeability Properties of Enac Selectivity Filter Mutants
title_full Permeability Properties of Enac Selectivity Filter Mutants
title_fullStr Permeability Properties of Enac Selectivity Filter Mutants
title_full_unstemmed Permeability Properties of Enac Selectivity Filter Mutants
title_short Permeability Properties of Enac Selectivity Filter Mutants
title_sort permeability properties of enac selectivity filter mutants
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2229513/
https://www.ncbi.nlm.nih.gov/pubmed/11723161
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