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The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions

The HAMP domain is a linker region in prokaryotic sensor proteins and relays input signals to the transmitter domain and vice versa. Functional as a dimer, the structure of HAMP shows a parallel coiled-coil motif comprising four helices. To date, it is unclear how HAMP can relay signals from one dom...

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Autores principales: Zhu, Lizhe, Bolhuis, Peter G., Vreede, Jocelyne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585426/
https://www.ncbi.nlm.nih.gov/pubmed/23468603
http://dx.doi.org/10.1371/journal.pcbi.1002913
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author Zhu, Lizhe
Bolhuis, Peter G.
Vreede, Jocelyne
author_facet Zhu, Lizhe
Bolhuis, Peter G.
Vreede, Jocelyne
author_sort Zhu, Lizhe
collection PubMed
description The HAMP domain is a linker region in prokaryotic sensor proteins and relays input signals to the transmitter domain and vice versa. Functional as a dimer, the structure of HAMP shows a parallel coiled-coil motif comprising four helices. To date, it is unclear how HAMP can relay signals from one domain to another, although several models exist. In this work, we use molecular simulation to test the hypothesis that HAMP adopts different conformations, one of which represents an active, signal-relaying configuration, and another an inactive, resting state. We first performed molecular dynamics simulation on the prototype HAMP domain Af1503 from Archaeoglobus fulgidus. We explored its conformational space by taking the structure of the A291F mutant disabling HAMP activity as a starting point. These simulations revealed additional conformational states that differ in the tilt angles between the helices as well as the relative piston shifts of the helices relative to each other. By enhancing the sampling in a metadynamics set up, we investigated three mechanistic models for HAMP signal transduction. Our results indicate that HAMP can access additional conformational states characterized by piston motion. Furthermore, the piston motion of the N-terminal helix of one monomer is directly correlated with the opposite piston motion of the C-terminal helix of the other monomer. The change in piston motion is accompanied by a change in tilt angle between the monomers, thus revealing that HAMP exhibits a collective motion, i.e. a combination of changes in tilt angles and a piston-like displacement. Our results provide insights into the conformational changes that underlie the signaling mechanism involving HAMP.
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spelling pubmed-35854262013-03-06 The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions Zhu, Lizhe Bolhuis, Peter G. Vreede, Jocelyne PLoS Comput Biol Research Article The HAMP domain is a linker region in prokaryotic sensor proteins and relays input signals to the transmitter domain and vice versa. Functional as a dimer, the structure of HAMP shows a parallel coiled-coil motif comprising four helices. To date, it is unclear how HAMP can relay signals from one domain to another, although several models exist. In this work, we use molecular simulation to test the hypothesis that HAMP adopts different conformations, one of which represents an active, signal-relaying configuration, and another an inactive, resting state. We first performed molecular dynamics simulation on the prototype HAMP domain Af1503 from Archaeoglobus fulgidus. We explored its conformational space by taking the structure of the A291F mutant disabling HAMP activity as a starting point. These simulations revealed additional conformational states that differ in the tilt angles between the helices as well as the relative piston shifts of the helices relative to each other. By enhancing the sampling in a metadynamics set up, we investigated three mechanistic models for HAMP signal transduction. Our results indicate that HAMP can access additional conformational states characterized by piston motion. Furthermore, the piston motion of the N-terminal helix of one monomer is directly correlated with the opposite piston motion of the C-terminal helix of the other monomer. The change in piston motion is accompanied by a change in tilt angle between the monomers, thus revealing that HAMP exhibits a collective motion, i.e. a combination of changes in tilt angles and a piston-like displacement. Our results provide insights into the conformational changes that underlie the signaling mechanism involving HAMP. Public Library of Science 2013-02-28 /pmc/articles/PMC3585426/ /pubmed/23468603 http://dx.doi.org/10.1371/journal.pcbi.1002913 Text en © 2013 Zhu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zhu, Lizhe
Bolhuis, Peter G.
Vreede, Jocelyne
The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title_full The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title_fullStr The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title_full_unstemmed The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title_short The HAMP Signal Relay Domain Adopts Multiple Conformational States through Collective Piston and Tilt Motions
title_sort hamp signal relay domain adopts multiple conformational states through collective piston and tilt motions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585426/
https://www.ncbi.nlm.nih.gov/pubmed/23468603
http://dx.doi.org/10.1371/journal.pcbi.1002913
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