Cargando…

Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling

Enzymatic synthesis and hydrolysis of nucleoside phosphate compounds play a key role in various biological pathways, like signal transduction, DNA synthesis and metabolism. Although these processes have been studied extensively, numerous key issues regarding the chemical pathway and atomic movements...

Descripción completa

Detalles Bibliográficos
Autores principales: Barabás, Orsolya, Németh, Veronika, Bodor, Andrea, Perczel, András, Rosta, Edina, Kele, Zoltán, Zagyva, Imre, Szabadka, Zoltán, Grolmusz, Vince I., Wilmanns, Matthias, Vértessy, Beáta G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3905902/
https://www.ncbi.nlm.nih.gov/pubmed/23982515
http://dx.doi.org/10.1093/nar/gkt756
_version_ 1782301402788265984
author Barabás, Orsolya
Németh, Veronika
Bodor, Andrea
Perczel, András
Rosta, Edina
Kele, Zoltán
Zagyva, Imre
Szabadka, Zoltán
Grolmusz, Vince I.
Wilmanns, Matthias
Vértessy, Beáta G.
author_facet Barabás, Orsolya
Németh, Veronika
Bodor, Andrea
Perczel, András
Rosta, Edina
Kele, Zoltán
Zagyva, Imre
Szabadka, Zoltán
Grolmusz, Vince I.
Wilmanns, Matthias
Vértessy, Beáta G.
author_sort Barabás, Orsolya
collection PubMed
description Enzymatic synthesis and hydrolysis of nucleoside phosphate compounds play a key role in various biological pathways, like signal transduction, DNA synthesis and metabolism. Although these processes have been studied extensively, numerous key issues regarding the chemical pathway and atomic movements remain open for many enzymatic reactions. Here, using the Mason–Pfizer monkey retrovirus dUTPase, we study the dUTPase-catalyzed hydrolysis of dUTP, an incorrect DNA building block, to elaborate the mechanistic details at high resolution. Combining mass spectrometry analysis of the dUTPase-catalyzed reaction carried out in [Image: see text] and quantum mechanics/molecular mechanics (QM/MM) simulation, we show that the nucleophilic attack occurs at the α-phosphate site. Phosphorus-31 NMR spectroscopy ((31)P-NMR) analysis confirms the site of attack and shows the capability of dUTPase to cleave the dUTP analogue α,β-imido-dUTP, containing the imido linkage usually regarded to be non-hydrolyzable. We present numerous X-ray crystal structures of distinct dUTPase and nucleoside phosphate complexes, which report on the progress of the chemical reaction along the reaction coordinate. The presently used combination of diverse structural methods reveals details of the nucleophilic attack and identifies a novel enzyme–product complex structure.
format Online
Article
Text
id pubmed-3905902
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-39059022014-01-29 Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling Barabás, Orsolya Németh, Veronika Bodor, Andrea Perczel, András Rosta, Edina Kele, Zoltán Zagyva, Imre Szabadka, Zoltán Grolmusz, Vince I. Wilmanns, Matthias Vértessy, Beáta G. Nucleic Acids Res Structural Biology Enzymatic synthesis and hydrolysis of nucleoside phosphate compounds play a key role in various biological pathways, like signal transduction, DNA synthesis and metabolism. Although these processes have been studied extensively, numerous key issues regarding the chemical pathway and atomic movements remain open for many enzymatic reactions. Here, using the Mason–Pfizer monkey retrovirus dUTPase, we study the dUTPase-catalyzed hydrolysis of dUTP, an incorrect DNA building block, to elaborate the mechanistic details at high resolution. Combining mass spectrometry analysis of the dUTPase-catalyzed reaction carried out in [Image: see text] and quantum mechanics/molecular mechanics (QM/MM) simulation, we show that the nucleophilic attack occurs at the α-phosphate site. Phosphorus-31 NMR spectroscopy ((31)P-NMR) analysis confirms the site of attack and shows the capability of dUTPase to cleave the dUTP analogue α,β-imido-dUTP, containing the imido linkage usually regarded to be non-hydrolyzable. We present numerous X-ray crystal structures of distinct dUTPase and nucleoside phosphate complexes, which report on the progress of the chemical reaction along the reaction coordinate. The presently used combination of diverse structural methods reveals details of the nucleophilic attack and identifies a novel enzyme–product complex structure. Oxford University Press 2013-12 2013-08-27 /pmc/articles/PMC3905902/ /pubmed/23982515 http://dx.doi.org/10.1093/nar/gkt756 Text en © The Author(s) 2013. Published by Oxford University Press. http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Structural Biology
Barabás, Orsolya
Németh, Veronika
Bodor, Andrea
Perczel, András
Rosta, Edina
Kele, Zoltán
Zagyva, Imre
Szabadka, Zoltán
Grolmusz, Vince I.
Wilmanns, Matthias
Vértessy, Beáta G.
Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title_full Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title_fullStr Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title_full_unstemmed Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title_short Catalytic mechanism of α-phosphate attack in dUTPase is revealed by X-ray crystallographic snapshots of distinct intermediates, (31)P-NMR spectroscopy and reaction path modelling
title_sort catalytic mechanism of α-phosphate attack in dutpase is revealed by x-ray crystallographic snapshots of distinct intermediates, (31)p-nmr spectroscopy and reaction path modelling
topic Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3905902/
https://www.ncbi.nlm.nih.gov/pubmed/23982515
http://dx.doi.org/10.1093/nar/gkt756
work_keys_str_mv AT barabasorsolya catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT nemethveronika catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT bodorandrea catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT perczelandras catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT rostaedina catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT kelezoltan catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT zagyvaimre catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT szabadkazoltan catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT grolmuszvincei catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT wilmannsmatthias catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling
AT vertessybeatag catalyticmechanismofaphosphateattackindutpaseisrevealedbyxraycrystallographicsnapshotsofdistinctintermediates31pnmrspectroscopyandreactionpathmodelling