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A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation

The transient receptor potential (TRP) channels act as key sensors of various chemical and physical stimuli in eukaryotic cells. Despite years of study, the molecular mechanisms of TRP channel activation remain unclear. To elucidate the structural, dynamic, and energetic basis of gating in TRPV1 (a...

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Autores principales: Zheng, Wenjun, Qin, Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4411258/
https://www.ncbi.nlm.nih.gov/pubmed/25918362
http://dx.doi.org/10.1085/jgp.201411335
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author Zheng, Wenjun
Qin, Feng
author_facet Zheng, Wenjun
Qin, Feng
author_sort Zheng, Wenjun
collection PubMed
description The transient receptor potential (TRP) channels act as key sensors of various chemical and physical stimuli in eukaryotic cells. Despite years of study, the molecular mechanisms of TRP channel activation remain unclear. To elucidate the structural, dynamic, and energetic basis of gating in TRPV1 (a founding member of the TRPV subfamily), we performed coarse-grained modeling and all-atom molecular dynamics (MD) simulation based on the recently solved high resolution structures of the open and closed form of TRPV1. Our coarse-grained normal mode analysis captures two key modes of collective motions involved in the TRPV1 gating transition, featuring a quaternary twist motion of the transmembrane domains (TMDs) relative to the intracellular domains (ICDs). Our transition pathway modeling predicts a sequence of structural movements that propagate from the ICDs to the TMDs via key interface domains (including the membrane proximal domain and the C-terminal domain), leading to sequential opening of the selectivity filter followed by the lower gate in the channel pore (confirmed by modeling conformational changes induced by the activation of ICDs). The above findings of coarse-grained modeling are robust to perturbation by lipids. Finally, our MD simulation of the ICD identifies key residues that contribute differently to the nonpolar energy of the open and closed state, and these residues are predicted to control the temperature sensitivity of TRPV1 gating. These computational predictions offer new insights to the mechanism for heat activation of TRPV1 gating, and will guide our future electrophysiology and mutagenesis studies.
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spelling pubmed-44112582015-11-01 A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation Zheng, Wenjun Qin, Feng J Gen Physiol Research Articles The transient receptor potential (TRP) channels act as key sensors of various chemical and physical stimuli in eukaryotic cells. Despite years of study, the molecular mechanisms of TRP channel activation remain unclear. To elucidate the structural, dynamic, and energetic basis of gating in TRPV1 (a founding member of the TRPV subfamily), we performed coarse-grained modeling and all-atom molecular dynamics (MD) simulation based on the recently solved high resolution structures of the open and closed form of TRPV1. Our coarse-grained normal mode analysis captures two key modes of collective motions involved in the TRPV1 gating transition, featuring a quaternary twist motion of the transmembrane domains (TMDs) relative to the intracellular domains (ICDs). Our transition pathway modeling predicts a sequence of structural movements that propagate from the ICDs to the TMDs via key interface domains (including the membrane proximal domain and the C-terminal domain), leading to sequential opening of the selectivity filter followed by the lower gate in the channel pore (confirmed by modeling conformational changes induced by the activation of ICDs). The above findings of coarse-grained modeling are robust to perturbation by lipids. Finally, our MD simulation of the ICD identifies key residues that contribute differently to the nonpolar energy of the open and closed state, and these residues are predicted to control the temperature sensitivity of TRPV1 gating. These computational predictions offer new insights to the mechanism for heat activation of TRPV1 gating, and will guide our future electrophysiology and mutagenesis studies. The Rockefeller University Press 2015-05 /pmc/articles/PMC4411258/ /pubmed/25918362 http://dx.doi.org/10.1085/jgp.201411335 Text en © 2015 Zheng and Qin 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.rupress.org/terms). 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 Research Articles
Zheng, Wenjun
Qin, Feng
A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title_full A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title_fullStr A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title_full_unstemmed A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title_short A combined coarse-grained and all-atom simulation of TRPV1 channel gating and heat activation
title_sort combined coarse-grained and all-atom simulation of trpv1 channel gating and heat activation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4411258/
https://www.ncbi.nlm.nih.gov/pubmed/25918362
http://dx.doi.org/10.1085/jgp.201411335
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