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Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore

To explore the role of pore-lining amino acids in Na(+) channel ion-selectivity, pore residues were  replaced serially with cysteine in cloned rat skeletal muscle Na(+) channels. Ionic selectivity was determined by measuring permeability and ionic current ratios of whole-cell currents in Xenopus ooc...

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Autores principales: Tsushima, Robert G., Li, Ronald A., Backx, Peter H.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1997
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2219431/
https://www.ncbi.nlm.nih.gov/pubmed/9101405
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author Tsushima, Robert G.
Li, Ronald A.
Backx, Peter H.
author_facet Tsushima, Robert G.
Li, Ronald A.
Backx, Peter H.
author_sort Tsushima, Robert G.
collection PubMed
description To explore the role of pore-lining amino acids in Na(+) channel ion-selectivity, pore residues were  replaced serially with cysteine in cloned rat skeletal muscle Na(+) channels. Ionic selectivity was determined by measuring permeability and ionic current ratios of whole-cell currents in Xenopus oocytes. The rSkM1 channels displayed an ionic selectivity sequence Na(+)>Li(+)>NH(4) (+)>>K(+)>>Cs(+) and were impermeable to divalent cations.  Replacement of residues in domain IV showed significantly enhanced current and permeability ratios of NH(4) (+) and K(+), and negative shifts in the reversal potentials recorded in the presence of external Na(+) solutions when compared to cysteine mutants in domains I, II, and III (except K1237C). Mutants in domain IV showed altered selectivity sequences: W1531C (NH(4) (+)>K(+)>Na(+)≥Li(+)≈Cs(+)), D1532C, and G1533C (Na(+)>Li(+)≥NH(4) (+)>K(+)>Cs(+)). Conservative replacement of the aromatic residue in domain IV (W1531) with phenylalanine or tyrosine retained Na(+) selectivity of the channel while the alanine mutant (W1531A) reduced ion selectivity. A single mutation within the third pore forming region (K1237C) dramatically altered the selectivity sequence of the rSkM1 channel (NH(4) (+)>K(+)>Na(+)≥Li(+)≈Cs(+)) and was permeable to divalent cations having the selectivity sequence Ca(2+)≥Sr(2+)>Mg(2+)>Ba(2+). Sulfhydryl modification of K1237C, W1531C or D1532C with methanethiosulfonate derivatives that introduce a positively charged ammonium group, large trimethylammonium moiety, or a negatively charged sulfonate group within the pore was ineffective in restoring Na(+) selectivity to these channels. Selectivity of D1532C mutants could be largely restored by increasing extracellular pH suggesting altering the ionized state at this position influences selectivity. These data suggest that K1237 in domain III and W1531, D1532, and G1533 in domain IV play a critical role in determining the ionic selectivity of the Na(+) channel.
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spelling pubmed-22194312008-04-22 Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore Tsushima, Robert G. Li, Ronald A. Backx, Peter H. J Gen Physiol Article To explore the role of pore-lining amino acids in Na(+) channel ion-selectivity, pore residues were  replaced serially with cysteine in cloned rat skeletal muscle Na(+) channels. Ionic selectivity was determined by measuring permeability and ionic current ratios of whole-cell currents in Xenopus oocytes. The rSkM1 channels displayed an ionic selectivity sequence Na(+)>Li(+)>NH(4) (+)>>K(+)>>Cs(+) and were impermeable to divalent cations.  Replacement of residues in domain IV showed significantly enhanced current and permeability ratios of NH(4) (+) and K(+), and negative shifts in the reversal potentials recorded in the presence of external Na(+) solutions when compared to cysteine mutants in domains I, II, and III (except K1237C). Mutants in domain IV showed altered selectivity sequences: W1531C (NH(4) (+)>K(+)>Na(+)≥Li(+)≈Cs(+)), D1532C, and G1533C (Na(+)>Li(+)≥NH(4) (+)>K(+)>Cs(+)). Conservative replacement of the aromatic residue in domain IV (W1531) with phenylalanine or tyrosine retained Na(+) selectivity of the channel while the alanine mutant (W1531A) reduced ion selectivity. A single mutation within the third pore forming region (K1237C) dramatically altered the selectivity sequence of the rSkM1 channel (NH(4) (+)>K(+)>Na(+)≥Li(+)≈Cs(+)) and was permeable to divalent cations having the selectivity sequence Ca(2+)≥Sr(2+)>Mg(2+)>Ba(2+). Sulfhydryl modification of K1237C, W1531C or D1532C with methanethiosulfonate derivatives that introduce a positively charged ammonium group, large trimethylammonium moiety, or a negatively charged sulfonate group within the pore was ineffective in restoring Na(+) selectivity to these channels. Selectivity of D1532C mutants could be largely restored by increasing extracellular pH suggesting altering the ionized state at this position influences selectivity. These data suggest that K1237 in domain III and W1531, D1532, and G1533 in domain IV play a critical role in determining the ionic selectivity of the Na(+) channel. The Rockefeller University Press 1997-04-01 /pmc/articles/PMC2219431/ /pubmed/9101405 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
Tsushima, Robert G.
Li, Ronald A.
Backx, Peter H.
Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title_full Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title_fullStr Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title_full_unstemmed Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title_short Altered Ionic Selectivity of the Sodium Channel Revealed by Cysteine Mutations within the Pore
title_sort altered ionic selectivity of the sodium channel revealed by cysteine mutations within the pore
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2219431/
https://www.ncbi.nlm.nih.gov/pubmed/9101405
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