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Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching

TRPV3 is a thermosensitive ion channel primarily expressed in epithelial tissues of the skin, nose, and tongue. The channel has been implicated in environmental thermosensation, hyperalgesia in inflamed tissues, skin sensitization, and hair growth. Although transient receptor potential (TRP) channel...

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Autores principales: Billen, Bert, Brams, Marijke, Debaveye, Sarah, Remeeva, Alina, Alpizar, Yeranddy A., Waelkens, Etienne, Kreir, Mohamed, Brüggemann, Andrea, Talavera, Karel, Nilius, Bernd, Voets, Thomas, Ulens, Chris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4432310/
https://www.ncbi.nlm.nih.gov/pubmed/25829496
http://dx.doi.org/10.1074/jbc.M114.628925
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author Billen, Bert
Brams, Marijke
Debaveye, Sarah
Remeeva, Alina
Alpizar, Yeranddy A.
Waelkens, Etienne
Kreir, Mohamed
Brüggemann, Andrea
Talavera, Karel
Nilius, Bernd
Voets, Thomas
Ulens, Chris
author_facet Billen, Bert
Brams, Marijke
Debaveye, Sarah
Remeeva, Alina
Alpizar, Yeranddy A.
Waelkens, Etienne
Kreir, Mohamed
Brüggemann, Andrea
Talavera, Karel
Nilius, Bernd
Voets, Thomas
Ulens, Chris
author_sort Billen, Bert
collection PubMed
description TRPV3 is a thermosensitive ion channel primarily expressed in epithelial tissues of the skin, nose, and tongue. The channel has been implicated in environmental thermosensation, hyperalgesia in inflamed tissues, skin sensitization, and hair growth. Although transient receptor potential (TRP) channel research has vastly increased our understanding of the physiological mechanisms of nociception and thermosensation, the molecular mechanics of these ion channels are still largely elusive. In order to better comprehend the functional properties and the mechanism of action in TRP channels, high-resolution three-dimensional structures are indispensable, because they will yield the necessary insights into architectural intimacies at the atomic level. However, structural studies of membrane proteins are currently hampered by difficulties in protein purification and in establishing suitable crystallization conditions. In this report, we present a novel protocol for the purification of membrane proteins, which takes advantage of a C-terminal GFP fusion. Using this protocol, we purified human TRPV3. We show that the purified protein is a fully functional ion channel with properties akin to the native channel using planar patch clamp on reconstituted channels and intrinsic tryptophan fluorescence spectroscopy. Using intrinsic tryptophan fluorescence spectroscopy, we reveal clear distinctions in the molecular interaction of different ligands with the channel. Altogether, this study provides powerful tools to broaden our understanding of ligand interaction with TRPV channels, and the availability of purified human TRPV3 opens up perspectives for further structural and functional studies.
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spelling pubmed-44323102015-05-15 Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching Billen, Bert Brams, Marijke Debaveye, Sarah Remeeva, Alina Alpizar, Yeranddy A. Waelkens, Etienne Kreir, Mohamed Brüggemann, Andrea Talavera, Karel Nilius, Bernd Voets, Thomas Ulens, Chris J Biol Chem Molecular Biophysics TRPV3 is a thermosensitive ion channel primarily expressed in epithelial tissues of the skin, nose, and tongue. The channel has been implicated in environmental thermosensation, hyperalgesia in inflamed tissues, skin sensitization, and hair growth. Although transient receptor potential (TRP) channel research has vastly increased our understanding of the physiological mechanisms of nociception and thermosensation, the molecular mechanics of these ion channels are still largely elusive. In order to better comprehend the functional properties and the mechanism of action in TRP channels, high-resolution three-dimensional structures are indispensable, because they will yield the necessary insights into architectural intimacies at the atomic level. However, structural studies of membrane proteins are currently hampered by difficulties in protein purification and in establishing suitable crystallization conditions. In this report, we present a novel protocol for the purification of membrane proteins, which takes advantage of a C-terminal GFP fusion. Using this protocol, we purified human TRPV3. We show that the purified protein is a fully functional ion channel with properties akin to the native channel using planar patch clamp on reconstituted channels and intrinsic tryptophan fluorescence spectroscopy. Using intrinsic tryptophan fluorescence spectroscopy, we reveal clear distinctions in the molecular interaction of different ligands with the channel. Altogether, this study provides powerful tools to broaden our understanding of ligand interaction with TRPV channels, and the availability of purified human TRPV3 opens up perspectives for further structural and functional studies. American Society for Biochemistry and Molecular Biology 2015-05-15 2015-03-31 /pmc/articles/PMC4432310/ /pubmed/25829496 http://dx.doi.org/10.1074/jbc.M114.628925 Text en © 2015 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/3.0) .
spellingShingle Molecular Biophysics
Billen, Bert
Brams, Marijke
Debaveye, Sarah
Remeeva, Alina
Alpizar, Yeranddy A.
Waelkens, Etienne
Kreir, Mohamed
Brüggemann, Andrea
Talavera, Karel
Nilius, Bernd
Voets, Thomas
Ulens, Chris
Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title_full Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title_fullStr Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title_full_unstemmed Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title_short Different Ligands of the TRPV3 Cation Channel Cause Distinct Conformational Changes as Revealed by Intrinsic Tryptophan Fluorescence Quenching
title_sort different ligands of the trpv3 cation channel cause distinct conformational changes as revealed by intrinsic tryptophan fluorescence quenching
topic Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4432310/
https://www.ncbi.nlm.nih.gov/pubmed/25829496
http://dx.doi.org/10.1074/jbc.M114.628925
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