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Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating

The molecular architecture of the NH(2) and COOH termini of the prokaryotic potassium channel KcsA has been determined using site-directed spin-labeling methods and paramagnetic resonance EPR spectroscopy. Cysteine mutants were generated (residues 5–24 and 121–160) and spin labeled, and the X-band C...

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Autores principales: Cortes, D. Marien, Cuello, Luis G., Perozo, Eduardo
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2001
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2217246/
https://www.ncbi.nlm.nih.gov/pubmed/11158168
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author Cortes, D. Marien
Cuello, Luis G.
Perozo, Eduardo
author_facet Cortes, D. Marien
Cuello, Luis G.
Perozo, Eduardo
author_sort Cortes, D. Marien
collection PubMed
description The molecular architecture of the NH(2) and COOH termini of the prokaryotic potassium channel KcsA has been determined using site-directed spin-labeling methods and paramagnetic resonance EPR spectroscopy. Cysteine mutants were generated (residues 5–24 and 121–160) and spin labeled, and the X-band CW EPR spectra were obtained from liposome-reconstituted channels at room temperature. Data on probe mobility (ΔHo(−1)), accessibility parameters (ΠO(2) and ΠNiEdda), and inter-subunit spin-spin interaction (Ω) were used as structural constraints to build a three-dimensional folding model of these cytoplasmic domains from a set of simulated annealing and restrained molecular dynamics runs. 32 backbone structures were generated and averaged using fourfold symmetry, and a final mean structure was obtained from the eight lowest energy runs. Based on the present data, together with information from the KcsA crystal structure, a model for the three-dimensional fold of full-length KcsA was constructed. In this model, the NH(2) terminus of KcsA forms an α-helix anchored at the membrane–water interface, while the COOH terminus forms a right-handed four-helix bundle that extend some 40–50 Å towards the cytoplasm. Functional analysis of COOH-terminal deletion constructs suggest that, while the COOH terminus does not play a substantial role in determining ion permeation properties, it exerts a modulatory role in the pH-dependent gating mechanism.
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spelling pubmed-22172462008-04-21 Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating Cortes, D. Marien Cuello, Luis G. Perozo, Eduardo J Gen Physiol Original Article The molecular architecture of the NH(2) and COOH termini of the prokaryotic potassium channel KcsA has been determined using site-directed spin-labeling methods and paramagnetic resonance EPR spectroscopy. Cysteine mutants were generated (residues 5–24 and 121–160) and spin labeled, and the X-band CW EPR spectra were obtained from liposome-reconstituted channels at room temperature. Data on probe mobility (ΔHo(−1)), accessibility parameters (ΠO(2) and ΠNiEdda), and inter-subunit spin-spin interaction (Ω) were used as structural constraints to build a three-dimensional folding model of these cytoplasmic domains from a set of simulated annealing and restrained molecular dynamics runs. 32 backbone structures were generated and averaged using fourfold symmetry, and a final mean structure was obtained from the eight lowest energy runs. Based on the present data, together with information from the KcsA crystal structure, a model for the three-dimensional fold of full-length KcsA was constructed. In this model, the NH(2) terminus of KcsA forms an α-helix anchored at the membrane–water interface, while the COOH terminus forms a right-handed four-helix bundle that extend some 40–50 Å towards the cytoplasm. Functional analysis of COOH-terminal deletion constructs suggest that, while the COOH terminus does not play a substantial role in determining ion permeation properties, it exerts a modulatory role in the pH-dependent gating mechanism. The Rockefeller University Press 2001-02-01 /pmc/articles/PMC2217246/ /pubmed/11158168 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
Cortes, D. Marien
Cuello, Luis G.
Perozo, Eduardo
Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title_full Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title_fullStr Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title_full_unstemmed Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title_short Molecular Architecture of Full-Length KcsA : Role of Cytoplasmic Domains in Ion Permeation and Activation Gating
title_sort molecular architecture of full-length kcsa : role of cytoplasmic domains in ion permeation and activation gating
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2217246/
https://www.ncbi.nlm.nih.gov/pubmed/11158168
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