Cargando…
Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore
[Image: see text] The sixth transmembrane segment (TM6) of the CFTR chloride channel has been intensively investigated. The effects of amino acid substitutions and chemical modification of engineered cysteines (cysteine scanning) on channel properties strongly suggest that TM6 is a key component of...
Autores principales: | , , , , , , , |
---|---|
Formato: | Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2009
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2765204/ https://www.ncbi.nlm.nih.gov/pubmed/19754156 http://dx.doi.org/10.1021/bi901314c |
_version_ | 1782173140910080000 |
---|---|
author | Alexander, Christopher Ivetac, Anthony Liu, Xuehong Norimatsu, Yohei Serrano, Jose R. Landstrom, Allison Sansom, Mark Dawson, David C. |
author_facet | Alexander, Christopher Ivetac, Anthony Liu, Xuehong Norimatsu, Yohei Serrano, Jose R. Landstrom, Allison Sansom, Mark Dawson, David C. |
author_sort | Alexander, Christopher |
collection | PubMed |
description | [Image: see text] The sixth transmembrane segment (TM6) of the CFTR chloride channel has been intensively investigated. The effects of amino acid substitutions and chemical modification of engineered cysteines (cysteine scanning) on channel properties strongly suggest that TM6 is a key component of the anion-conducting pore, but previous cysteine-scanning studies of TM6 have produced conflicting results. Our aim was to resolve these conflicts by combining a screening strategy based on multiple, thiol-directed probes with molecular modeling of the pore. CFTR constructs were screened for reactivity toward both channel-permeant and channel-impermeant thiol-directed reagents, and patterns of reactivity in TM6 were mapped onto two new, molecular models of the CFTR pore: one based on homology modeling using Sav1866 as the template and a second derived from the first by molecular dynamics simulation. Comparison of the pattern of cysteine reactivity with model predictions suggests that nonreactive sites are those where the TM6 side chains are occluded by other TMs. Reactive sites, in contrast, are generally situated such that the respective amino acid side chains either project into the predicted pore or lie within a predicted extracellular loop. Sites where engineered cysteines react with both channel-permeant and channel-impermeant probes occupy the outermost extent of TM6 or the predicted TM5−6 loop. Sites where cysteine reactivity is limited to channel-permeant probes occupy more cytoplasmic locations. The results provide an initial validation of two, new molecular models for CFTR and suggest that molecular dynamics simulation will be a useful tool for unraveling the structural basis of anion conduction by CFTR. |
format | Text |
id | pubmed-2765204 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2009 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-27652042009-10-21 Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore Alexander, Christopher Ivetac, Anthony Liu, Xuehong Norimatsu, Yohei Serrano, Jose R. Landstrom, Allison Sansom, Mark Dawson, David C. Biochemistry [Image: see text] The sixth transmembrane segment (TM6) of the CFTR chloride channel has been intensively investigated. The effects of amino acid substitutions and chemical modification of engineered cysteines (cysteine scanning) on channel properties strongly suggest that TM6 is a key component of the anion-conducting pore, but previous cysteine-scanning studies of TM6 have produced conflicting results. Our aim was to resolve these conflicts by combining a screening strategy based on multiple, thiol-directed probes with molecular modeling of the pore. CFTR constructs were screened for reactivity toward both channel-permeant and channel-impermeant thiol-directed reagents, and patterns of reactivity in TM6 were mapped onto two new, molecular models of the CFTR pore: one based on homology modeling using Sav1866 as the template and a second derived from the first by molecular dynamics simulation. Comparison of the pattern of cysteine reactivity with model predictions suggests that nonreactive sites are those where the TM6 side chains are occluded by other TMs. Reactive sites, in contrast, are generally situated such that the respective amino acid side chains either project into the predicted pore or lie within a predicted extracellular loop. Sites where engineered cysteines react with both channel-permeant and channel-impermeant probes occupy the outermost extent of TM6 or the predicted TM5−6 loop. Sites where cysteine reactivity is limited to channel-permeant probes occupy more cytoplasmic locations. The results provide an initial validation of two, new molecular models for CFTR and suggest that molecular dynamics simulation will be a useful tool for unraveling the structural basis of anion conduction by CFTR. American Chemical Society 2009-09-15 2009-10-27 /pmc/articles/PMC2765204/ /pubmed/19754156 http://dx.doi.org/10.1021/bi901314c Text en Copyright © 2009 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org. |
spellingShingle | Alexander, Christopher Ivetac, Anthony Liu, Xuehong Norimatsu, Yohei Serrano, Jose R. Landstrom, Allison Sansom, Mark Dawson, David C. Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title | Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title_full | Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title_fullStr | Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title_full_unstemmed | Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title_short | Cystic Fibrosis Transmembrane Conductance Regulator: Using Differential Reactivity toward Channel-Permeant and Channel-Impermeant Thiol-Reactive Probes To Test a Molecular Model for the Pore |
title_sort | cystic fibrosis transmembrane conductance regulator: using differential reactivity toward channel-permeant and channel-impermeant thiol-reactive probes to test a molecular model for the pore |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2765204/ https://www.ncbi.nlm.nih.gov/pubmed/19754156 http://dx.doi.org/10.1021/bi901314c |
work_keys_str_mv | AT alexanderchristopher cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT ivetacanthony cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT liuxuehong cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT norimatsuyohei cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT serranojoser cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT landstromallison cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT sansommark cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore AT dawsondavidc cysticfibrosistransmembraneconductanceregulatorusingdifferentialreactivitytowardchannelpermeantandchannelimpermeantthiolreactiveprobestotestamolecularmodelforthepore |