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Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase

Diverse organophosphate hydrolases have convergently evolved the ability to hydrolyse man-made organophosphates. Thus, these enzymes are attractive model systems for studying the factors shaping enzyme functional evolution. Methyl parathion hydrolase (MPH) is an enzyme from the metallo-β-lactamase s...

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Autores principales: Purg, Miha, Pabis, Anna, Baier, Florian, Tokuriki, Nobuhiko, Jackson, Colin, Kamerlin, Shina Caroline Lynn
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5052733/
https://www.ncbi.nlm.nih.gov/pubmed/27698033
http://dx.doi.org/10.1098/rsta.2016.0150
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author Purg, Miha
Pabis, Anna
Baier, Florian
Tokuriki, Nobuhiko
Jackson, Colin
Kamerlin, Shina Caroline Lynn
author_facet Purg, Miha
Pabis, Anna
Baier, Florian
Tokuriki, Nobuhiko
Jackson, Colin
Kamerlin, Shina Caroline Lynn
author_sort Purg, Miha
collection PubMed
description Diverse organophosphate hydrolases have convergently evolved the ability to hydrolyse man-made organophosphates. Thus, these enzymes are attractive model systems for studying the factors shaping enzyme functional evolution. Methyl parathion hydrolase (MPH) is an enzyme from the metallo-β-lactamase superfamily, which hydrolyses a wide range of organophosphate, aryl ester and lactone substrates. In addition, MPH demonstrates metal-ion-dependent selectivity patterns. The origins of this remain unclear, but are linked to open questions about the more general role of metal ions in functional evolution and divergence within enzyme superfamilies. Here, we present detailed mechanistic studies of the paraoxonase and arylesterase activities of MPH complexed with five different transition metal ions, and demonstrate that the hydrolysis reactions proceed via similar pathways and transition states. However, while it is possible to discern a clear structural origin for the selectivity between different substrates, the selectivity between different metal ions appears to lie instead in the distinct electrostatic properties of the metal ions themselves, which causes subtle changes in transition state geometries and metal–metal distances at the transition state rather than significant structural changes in the active site. While subtle, these differences can be significant for shaping the metal-ion-dependent activity patterns observed for this enzyme. This article is part of the themed issue ‘Multiscale modelling at the physics–chemistry–biology interface’.
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spelling pubmed-50527332016-11-13 Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase Purg, Miha Pabis, Anna Baier, Florian Tokuriki, Nobuhiko Jackson, Colin Kamerlin, Shina Caroline Lynn Philos Trans A Math Phys Eng Sci Articles Diverse organophosphate hydrolases have convergently evolved the ability to hydrolyse man-made organophosphates. Thus, these enzymes are attractive model systems for studying the factors shaping enzyme functional evolution. Methyl parathion hydrolase (MPH) is an enzyme from the metallo-β-lactamase superfamily, which hydrolyses a wide range of organophosphate, aryl ester and lactone substrates. In addition, MPH demonstrates metal-ion-dependent selectivity patterns. The origins of this remain unclear, but are linked to open questions about the more general role of metal ions in functional evolution and divergence within enzyme superfamilies. Here, we present detailed mechanistic studies of the paraoxonase and arylesterase activities of MPH complexed with five different transition metal ions, and demonstrate that the hydrolysis reactions proceed via similar pathways and transition states. However, while it is possible to discern a clear structural origin for the selectivity between different substrates, the selectivity between different metal ions appears to lie instead in the distinct electrostatic properties of the metal ions themselves, which causes subtle changes in transition state geometries and metal–metal distances at the transition state rather than significant structural changes in the active site. While subtle, these differences can be significant for shaping the metal-ion-dependent activity patterns observed for this enzyme. This article is part of the themed issue ‘Multiscale modelling at the physics–chemistry–biology interface’. The Royal Society 2016-11-13 /pmc/articles/PMC5052733/ /pubmed/27698033 http://dx.doi.org/10.1098/rsta.2016.0150 Text en © 2016 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Articles
Purg, Miha
Pabis, Anna
Baier, Florian
Tokuriki, Nobuhiko
Jackson, Colin
Kamerlin, Shina Caroline Lynn
Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title_full Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title_fullStr Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title_full_unstemmed Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title_short Probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
title_sort probing the mechanisms for the selectivity and promiscuity of methyl parathion hydrolase
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5052733/
https://www.ncbi.nlm.nih.gov/pubmed/27698033
http://dx.doi.org/10.1098/rsta.2016.0150
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