Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.

Potassium channels are dynamic proteins that undergo large conformational changes to regulate the flow of K(+) ions across the cell membrane. Understanding the gating mechanism of these channels therefore requires methods for probing channel structure in both their open and closed conformations. Rad...

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Main Authors: Gupta, S, Bavro, V, D'Mello, R, Tucker, S, Vénien-Bryan, C, Chance, MR
Format: Journal article
Language:English
Published: 2010
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author Gupta, S
Bavro, V
D'Mello, R
Tucker, S
Vénien-Bryan, C
Chance, MR
author_facet Gupta, S
Bavro, V
D'Mello, R
Tucker, S
Vénien-Bryan, C
Chance, MR
author_sort Gupta, S
collection OXFORD
description Potassium channels are dynamic proteins that undergo large conformational changes to regulate the flow of K(+) ions across the cell membrane. Understanding the gating mechanism of these channels therefore requires methods for probing channel structure in both their open and closed conformations. Radiolytic footprinting is used to study the gating mechanism of the inwardly-rectifying potassium channel KirBac3.1. The purified protein stabilized in either open or closed conformations was exposed to focused synchrotron X-ray beams on millisecond timescales to modify solvent accessible amino acid side chains. These modifications were identified and quantified using high-resolution mass spectrometry. The differences observed between the closed and open states were then used to reveal local conformational changes that occur during channel gating. The results provide support for a proposed gating mechanism of the Kir channel and demonstrate a method of probing the dynamic gating mechanism of other integral membrane proteins and ion channels.
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spelling oxford-uuid:6a9dc82e-237e-430d-88b6-093c538424922022-03-26T18:58:40ZConformational changes during the gating of a potassium channel revealed by structural mass spectrometry.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:6a9dc82e-237e-430d-88b6-093c53842492EnglishSymplectic Elements at Oxford2010Gupta, SBavro, VD'Mello, RTucker, SVénien-Bryan, CChance, MRPotassium channels are dynamic proteins that undergo large conformational changes to regulate the flow of K(+) ions across the cell membrane. Understanding the gating mechanism of these channels therefore requires methods for probing channel structure in both their open and closed conformations. Radiolytic footprinting is used to study the gating mechanism of the inwardly-rectifying potassium channel KirBac3.1. The purified protein stabilized in either open or closed conformations was exposed to focused synchrotron X-ray beams on millisecond timescales to modify solvent accessible amino acid side chains. These modifications were identified and quantified using high-resolution mass spectrometry. The differences observed between the closed and open states were then used to reveal local conformational changes that occur during channel gating. The results provide support for a proposed gating mechanism of the Kir channel and demonstrate a method of probing the dynamic gating mechanism of other integral membrane proteins and ion channels.
spellingShingle Gupta, S
Bavro, V
D'Mello, R
Tucker, S
Vénien-Bryan, C
Chance, MR
Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title_full Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title_fullStr Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title_full_unstemmed Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title_short Conformational changes during the gating of a potassium channel revealed by structural mass spectrometry.
title_sort conformational changes during the gating of a potassium channel revealed by structural mass spectrometry
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