Cargando…

Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding

Bitter molecules in humans are detected by ∼25 G protein-coupled receptors (GPCRs). The lack of atomic resolution structure for any of them is complicating an in depth understanding of the molecular mechanisms underlying bitter taste perception. Here, we investigate the molecular determinants of the...

Descripción completa

Detalles Bibliográficos
Autores principales: Marchiori, Alessandro, Capece, Luciana, Giorgetti, Alejandro, Gasparini, Paolo, Behrens, Maik, Carloni, Paolo, Meyerhof, Wolfgang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3669430/
https://www.ncbi.nlm.nih.gov/pubmed/23741366
http://dx.doi.org/10.1371/journal.pone.0064675
_version_ 1782271756431523840
author Marchiori, Alessandro
Capece, Luciana
Giorgetti, Alejandro
Gasparini, Paolo
Behrens, Maik
Carloni, Paolo
Meyerhof, Wolfgang
author_facet Marchiori, Alessandro
Capece, Luciana
Giorgetti, Alejandro
Gasparini, Paolo
Behrens, Maik
Carloni, Paolo
Meyerhof, Wolfgang
author_sort Marchiori, Alessandro
collection PubMed
description Bitter molecules in humans are detected by ∼25 G protein-coupled receptors (GPCRs). The lack of atomic resolution structure for any of them is complicating an in depth understanding of the molecular mechanisms underlying bitter taste perception. Here, we investigate the molecular determinants of the interaction of the TAS2R38 bitter taste receptor with its agonists phenylthiocarbamide (PTC) and propylthiouracil (PROP). We use the recently developed hybrid Molecular Mechanics/Coarse Grained (MM/CG) method tailored specifically for GPCRs. The method, through an extensive exploration of the conformational space in the binding pocket, allows the identification of several residues important for agonist binding that would have been very difficult to capture from the standard bioinformatics/docking approach. Our calculations suggest that both agonists bind to Asn103, Phe197, Phe264 and Trp201, whilst they do not interact with the so-called extra cellular loop 2, involved in cis-retinal binding in the GPCR rhodopsin. These predictions are consistent with data sets based on more than 20 site-directed mutagenesis and functional calcium imaging experiments of TAS2R38. The method could be readily used for other GPCRs for which experimental information is currently lacking.
format Online
Article
Text
id pubmed-3669430
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-36694302013-06-05 Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding Marchiori, Alessandro Capece, Luciana Giorgetti, Alejandro Gasparini, Paolo Behrens, Maik Carloni, Paolo Meyerhof, Wolfgang PLoS One Research Article Bitter molecules in humans are detected by ∼25 G protein-coupled receptors (GPCRs). The lack of atomic resolution structure for any of them is complicating an in depth understanding of the molecular mechanisms underlying bitter taste perception. Here, we investigate the molecular determinants of the interaction of the TAS2R38 bitter taste receptor with its agonists phenylthiocarbamide (PTC) and propylthiouracil (PROP). We use the recently developed hybrid Molecular Mechanics/Coarse Grained (MM/CG) method tailored specifically for GPCRs. The method, through an extensive exploration of the conformational space in the binding pocket, allows the identification of several residues important for agonist binding that would have been very difficult to capture from the standard bioinformatics/docking approach. Our calculations suggest that both agonists bind to Asn103, Phe197, Phe264 and Trp201, whilst they do not interact with the so-called extra cellular loop 2, involved in cis-retinal binding in the GPCR rhodopsin. These predictions are consistent with data sets based on more than 20 site-directed mutagenesis and functional calcium imaging experiments of TAS2R38. The method could be readily used for other GPCRs for which experimental information is currently lacking. Public Library of Science 2013-05-31 /pmc/articles/PMC3669430/ /pubmed/23741366 http://dx.doi.org/10.1371/journal.pone.0064675 Text en © 2013 Marchiori 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
Marchiori, Alessandro
Capece, Luciana
Giorgetti, Alejandro
Gasparini, Paolo
Behrens, Maik
Carloni, Paolo
Meyerhof, Wolfgang
Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title_full Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title_fullStr Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title_full_unstemmed Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title_short Coarse-Grained/Molecular Mechanics of the TAS2R38 Bitter Taste Receptor: Experimentally-Validated Detailed Structural Prediction of Agonist Binding
title_sort coarse-grained/molecular mechanics of the tas2r38 bitter taste receptor: experimentally-validated detailed structural prediction of agonist binding
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3669430/
https://www.ncbi.nlm.nih.gov/pubmed/23741366
http://dx.doi.org/10.1371/journal.pone.0064675
work_keys_str_mv AT marchiorialessandro coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT capeceluciana coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT giorgettialejandro coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT gasparinipaolo coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT behrensmaik coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT carlonipaolo coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding
AT meyerhofwolfgang coarsegrainedmolecularmechanicsofthetas2r38bittertastereceptorexperimentallyvalidateddetailedstructuralpredictionofagonistbinding