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Long-pore Electrostatics in Inward-rectifier Potassium Channels

Inward-rectifier potassium (Kir) channels differ from the canonical K(+) channel structure in that they possess a long extended pore (∼85 Å) for ion conduction that reaches deeply into the cytoplasm. This unique structural feature is presumably involved in regulating functional properties specific t...

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Autores principales: Robertson, Janice L., Palmer, Lawrence G., Roux, Benoît
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2585864/
https://www.ncbi.nlm.nih.gov/pubmed/19001143
http://dx.doi.org/10.1085/jgp.200810068
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author Robertson, Janice L.
Palmer, Lawrence G.
Roux, Benoît
author_facet Robertson, Janice L.
Palmer, Lawrence G.
Roux, Benoît
author_sort Robertson, Janice L.
collection PubMed
description Inward-rectifier potassium (Kir) channels differ from the canonical K(+) channel structure in that they possess a long extended pore (∼85 Å) for ion conduction that reaches deeply into the cytoplasm. This unique structural feature is presumably involved in regulating functional properties specific to Kir channels, such as conductance, rectification block, and ligand-dependent gating. To elucidate the underpinnings of these functional roles, we examine the electrostatics of an ion along this extended pore. Homology models are constructed based on the open-state model of KirBac1.1 for four mammalian Kir channels: Kir1.1/ROMK, Kir2.1/IRK, Kir3.1/GIRK, and Kir6.2/KATP. By solving the Poisson-Boltzmann equation, the electrostatic free energy of a K(+) ion is determined along each pore, revealing that mammalian Kir channels provide a favorable environment for cations and suggesting the existence of high-density regions in the cytoplasmic domain and cavity. The contribution from the reaction field (the self-energy arising from the dielectric polarization induced by the ion's charge in the complex geometry of the pore) is unfavorable inside the long pore. However, this is well compensated by the electrostatic interaction with the static field arising from the protein charges and shielded by the dielectric surrounding. Decomposition of the static field provides a list of residues that display remarkable correspondence with existing mutagenesis data identifying amino acids that affect conduction and rectification. Many of these residues demonstrate interactions with the ion over long distances, up to 40 Å, suggesting that mutations potentially affect ion or blocker energetics over the entire pore. These results provide a foundation for understanding ion interactions in Kir channels and extend to the study of ion permeation, block, and gating in long, cation-specific pores.
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spelling pubmed-25858642009-06-01 Long-pore Electrostatics in Inward-rectifier Potassium Channels Robertson, Janice L. Palmer, Lawrence G. Roux, Benoît J Gen Physiol Articles Inward-rectifier potassium (Kir) channels differ from the canonical K(+) channel structure in that they possess a long extended pore (∼85 Å) for ion conduction that reaches deeply into the cytoplasm. This unique structural feature is presumably involved in regulating functional properties specific to Kir channels, such as conductance, rectification block, and ligand-dependent gating. To elucidate the underpinnings of these functional roles, we examine the electrostatics of an ion along this extended pore. Homology models are constructed based on the open-state model of KirBac1.1 for four mammalian Kir channels: Kir1.1/ROMK, Kir2.1/IRK, Kir3.1/GIRK, and Kir6.2/KATP. By solving the Poisson-Boltzmann equation, the electrostatic free energy of a K(+) ion is determined along each pore, revealing that mammalian Kir channels provide a favorable environment for cations and suggesting the existence of high-density regions in the cytoplasmic domain and cavity. The contribution from the reaction field (the self-energy arising from the dielectric polarization induced by the ion's charge in the complex geometry of the pore) is unfavorable inside the long pore. However, this is well compensated by the electrostatic interaction with the static field arising from the protein charges and shielded by the dielectric surrounding. Decomposition of the static field provides a list of residues that display remarkable correspondence with existing mutagenesis data identifying amino acids that affect conduction and rectification. Many of these residues demonstrate interactions with the ion over long distances, up to 40 Å, suggesting that mutations potentially affect ion or blocker energetics over the entire pore. These results provide a foundation for understanding ion interactions in Kir channels and extend to the study of ion permeation, block, and gating in long, cation-specific pores. The Rockefeller University Press 2008-12 /pmc/articles/PMC2585864/ /pubmed/19001143 http://dx.doi.org/10.1085/jgp.200810068 Text en © 2008 Robertson et al. 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.jgp.org/misc/terms.shtml). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 3.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Articles
Robertson, Janice L.
Palmer, Lawrence G.
Roux, Benoît
Long-pore Electrostatics in Inward-rectifier Potassium Channels
title Long-pore Electrostatics in Inward-rectifier Potassium Channels
title_full Long-pore Electrostatics in Inward-rectifier Potassium Channels
title_fullStr Long-pore Electrostatics in Inward-rectifier Potassium Channels
title_full_unstemmed Long-pore Electrostatics in Inward-rectifier Potassium Channels
title_short Long-pore Electrostatics in Inward-rectifier Potassium Channels
title_sort long-pore electrostatics in inward-rectifier potassium channels
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2585864/
https://www.ncbi.nlm.nih.gov/pubmed/19001143
http://dx.doi.org/10.1085/jgp.200810068
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