Cargando…

Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies

A multidisciplinary strategy to obtain structural information on the intraprotein region is described here. As probe ligands, (S)- and (R)-CPFMe (the methyl esters of the chiral drug carprofen) have been selected, while bovine α(1)-acid glycoprotein (BAAG) has been chosen as a biological host. The p...

Descripción completa

Detalles Bibliográficos
Autores principales: Limones-Herrero, Daniel, Pérez-Ruiz, Raúl, Lence, Emilio, González-Bello, Concepción, Miranda, Miguel A., Jiménez, M. Consuelo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5431658/
https://www.ncbi.nlm.nih.gov/pubmed/28553497
http://dx.doi.org/10.1039/c6sc04900a
_version_ 1783236473370181632
author Limones-Herrero, Daniel
Pérez-Ruiz, Raúl
Lence, Emilio
González-Bello, Concepción
Miranda, Miguel A.
Jiménez, M. Consuelo
author_facet Limones-Herrero, Daniel
Pérez-Ruiz, Raúl
Lence, Emilio
González-Bello, Concepción
Miranda, Miguel A.
Jiménez, M. Consuelo
author_sort Limones-Herrero, Daniel
collection PubMed
description A multidisciplinary strategy to obtain structural information on the intraprotein region is described here. As probe ligands, (S)- and (R)-CPFMe (the methyl esters of the chiral drug carprofen) have been selected, while bovine α(1)-acid glycoprotein (BAAG) has been chosen as a biological host. The procedure involves the separate irradiation of the BAAG/(S)-CPFMe and BAAG/(R)-CPFMe complexes, coupled with fluorescence spectroscopy, laser flash photolysis, proteomic analysis, docking and molecular dynamics simulations. Thus, irradiation of the BAAG/CPFMe complexes at λ = 320 nm was followed by fluorescence spectroscopy. The intensity of the emission band obtained after irradiation indicated photodehalogenation, whereas its structureless shape suggested covalent binding of the resulting radical CBZMe˙ to the biopolymer. After gel filtration chromatography, the spectra still displayed emission, in agreement with covalent attachment of CBZMe˙ to BAAG. Stereodifferentiation was observed in this process. After trypsin digestion and ESI-MS/MS, the incorporation of CBZMe was detected at Phe68. Docking and molecular dynamics simulation studies, which were carried out using a homology model of BAAG, reveal that the closer proximity of the aromatic moiety of the (S)-enantiomer to the phenyl group of Phe68 would be responsible for the experimentally observed, more effective chemical modification of the protein. The proposed tridimensional structure of BAAG covalently modified by the two enantiomers is also provided. In principle, this approach can be extended to a variety of protein/ligand complexes.
format Online
Article
Text
id pubmed-5431658
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-54316582017-05-26 Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies Limones-Herrero, Daniel Pérez-Ruiz, Raúl Lence, Emilio González-Bello, Concepción Miranda, Miguel A. Jiménez, M. Consuelo Chem Sci Chemistry A multidisciplinary strategy to obtain structural information on the intraprotein region is described here. As probe ligands, (S)- and (R)-CPFMe (the methyl esters of the chiral drug carprofen) have been selected, while bovine α(1)-acid glycoprotein (BAAG) has been chosen as a biological host. The procedure involves the separate irradiation of the BAAG/(S)-CPFMe and BAAG/(R)-CPFMe complexes, coupled with fluorescence spectroscopy, laser flash photolysis, proteomic analysis, docking and molecular dynamics simulations. Thus, irradiation of the BAAG/CPFMe complexes at λ = 320 nm was followed by fluorescence spectroscopy. The intensity of the emission band obtained after irradiation indicated photodehalogenation, whereas its structureless shape suggested covalent binding of the resulting radical CBZMe˙ to the biopolymer. After gel filtration chromatography, the spectra still displayed emission, in agreement with covalent attachment of CBZMe˙ to BAAG. Stereodifferentiation was observed in this process. After trypsin digestion and ESI-MS/MS, the incorporation of CBZMe was detected at Phe68. Docking and molecular dynamics simulation studies, which were carried out using a homology model of BAAG, reveal that the closer proximity of the aromatic moiety of the (S)-enantiomer to the phenyl group of Phe68 would be responsible for the experimentally observed, more effective chemical modification of the protein. The proposed tridimensional structure of BAAG covalently modified by the two enantiomers is also provided. In principle, this approach can be extended to a variety of protein/ligand complexes. Royal Society of Chemistry 2017-04-01 2017-01-05 /pmc/articles/PMC5431658/ /pubmed/28553497 http://dx.doi.org/10.1039/c6sc04900a Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Limones-Herrero, Daniel
Pérez-Ruiz, Raúl
Lence, Emilio
González-Bello, Concepción
Miranda, Miguel A.
Jiménez, M. Consuelo
Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title_full Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title_fullStr Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title_full_unstemmed Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title_short Mapping a protein recognition centre with chiral photoactive ligands. An integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
title_sort mapping a protein recognition centre with chiral photoactive ligands. an integrated approach combining photophysics, reactivity, proteomics and molecular dynamics simulation studies
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5431658/
https://www.ncbi.nlm.nih.gov/pubmed/28553497
http://dx.doi.org/10.1039/c6sc04900a
work_keys_str_mv AT limonesherrerodaniel mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies
AT perezruizraul mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies
AT lenceemilio mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies
AT gonzalezbelloconcepcion mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies
AT mirandamiguela mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies
AT jimenezmconsuelo mappingaproteinrecognitioncentrewithchiralphotoactiveligandsanintegratedapproachcombiningphotophysicsreactivityproteomicsandmoleculardynamicssimulationstudies