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Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry

[Image: see text] The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na(+), K(+)) channels central to neurological signal transmission can function as a distinct module. When linked to an otherwise voltage-insensitive, ion-selective membrane pore, the VSD imparts voltage sensitivity to t...

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Autores principales: Tronin, Andrey Y., Nordgren, C. Erik, Strzalka, Joseph W., Kuzmenko, Ivan, Worcester, David L., Lauter, Valeria, Freites, J. Alfredo, Tobias, Douglas J., Blasie, J. Kent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4007984/
https://www.ncbi.nlm.nih.gov/pubmed/24697545
http://dx.doi.org/10.1021/la500560w
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author Tronin, Andrey Y.
Nordgren, C. Erik
Strzalka, Joseph W.
Kuzmenko, Ivan
Worcester, David L.
Lauter, Valeria
Freites, J. Alfredo
Tobias, Douglas J.
Blasie, J. Kent
author_facet Tronin, Andrey Y.
Nordgren, C. Erik
Strzalka, Joseph W.
Kuzmenko, Ivan
Worcester, David L.
Lauter, Valeria
Freites, J. Alfredo
Tobias, Douglas J.
Blasie, J. Kent
author_sort Tronin, Andrey Y.
collection PubMed
description [Image: see text] The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na(+), K(+)) channels central to neurological signal transmission can function as a distinct module. When linked to an otherwise voltage-insensitive, ion-selective membrane pore, the VSD imparts voltage sensitivity to the channel. Proteins homologous with the VSD have recently been found to function themselves as voltage-gated proton channels or to impart voltage sensitivity to enzymes. Determining the conformational changes associated with voltage gating in the VSD itself in the absence of a pore domain thereby gains importance. We report the direct measurement of changes in the scattering-length density (SLD) profile of the VSD protein, vectorially oriented within a reconstituted phospholipid bilayer membrane, as a function of the transmembrane electric potential by time-resolved X-ray and neutron interferometry. The changes in the experimental SLD profiles for both polarizing and depolarizing potentials with respect to zero potential were found to extend over the entire length of the isolated VSD’s profile structure. The characteristics of the changes observed were in qualitative agreement with molecular dynamics simulations of a related membrane system, suggesting an initial interpretation of these changes in terms of the VSD’s atomic-level 3-D structure.
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spelling pubmed-40079842015-04-03 Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry Tronin, Andrey Y. Nordgren, C. Erik Strzalka, Joseph W. Kuzmenko, Ivan Worcester, David L. Lauter, Valeria Freites, J. Alfredo Tobias, Douglas J. Blasie, J. Kent Langmuir [Image: see text] The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na(+), K(+)) channels central to neurological signal transmission can function as a distinct module. When linked to an otherwise voltage-insensitive, ion-selective membrane pore, the VSD imparts voltage sensitivity to the channel. Proteins homologous with the VSD have recently been found to function themselves as voltage-gated proton channels or to impart voltage sensitivity to enzymes. Determining the conformational changes associated with voltage gating in the VSD itself in the absence of a pore domain thereby gains importance. We report the direct measurement of changes in the scattering-length density (SLD) profile of the VSD protein, vectorially oriented within a reconstituted phospholipid bilayer membrane, as a function of the transmembrane electric potential by time-resolved X-ray and neutron interferometry. The changes in the experimental SLD profiles for both polarizing and depolarizing potentials with respect to zero potential were found to extend over the entire length of the isolated VSD’s profile structure. The characteristics of the changes observed were in qualitative agreement with molecular dynamics simulations of a related membrane system, suggesting an initial interpretation of these changes in terms of the VSD’s atomic-level 3-D structure. American Chemical Society 2014-04-03 2014-04-29 /pmc/articles/PMC4007984/ /pubmed/24697545 http://dx.doi.org/10.1021/la500560w Text en Copyright © 2014 American Chemical Society
spellingShingle Tronin, Andrey Y.
Nordgren, C. Erik
Strzalka, Joseph W.
Kuzmenko, Ivan
Worcester, David L.
Lauter, Valeria
Freites, J. Alfredo
Tobias, Douglas J.
Blasie, J. Kent
Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title_full Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title_fullStr Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title_full_unstemmed Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title_short Direct Evidence of Conformational Changes Associated with Voltage Gating in a Voltage Sensor Protein by Time-Resolved X-ray/Neutron Interferometry
title_sort direct evidence of conformational changes associated with voltage gating in a voltage sensor protein by time-resolved x-ray/neutron interferometry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4007984/
https://www.ncbi.nlm.nih.gov/pubmed/24697545
http://dx.doi.org/10.1021/la500560w
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