Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.

Ceriporiopsis subvermispora oxalate oxidase (CsOxOx) is the first bicupin enzyme identified that catalyzes manganese-dependent oxidation of oxalate. In previous work, we have shown that the dominant contribution to catalysis comes from the monoprotonated form of oxalate binding to a form of the enzy...

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Main Authors: Ellen W Moomaw, Eric Hoffer, Patricia Moussatche, John C Salerno, Morgan Grant, Bridget Immelman, Richard Uberto, Andrew Ozarowski, Alexander Angerhofer
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3585803?pdf=render
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spelling doaj-5f6b15c15673425392c4385fb5def7c42020-11-25T01:08:22ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0183e5793310.1371/journal.pone.0057933Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.Ellen W MoomawEric HofferPatricia MoussatcheJohn C SalernoMorgan GrantBridget ImmelmanRichard UbertoAndrew OzarowskiAlexander AngerhoferCeriporiopsis subvermispora oxalate oxidase (CsOxOx) is the first bicupin enzyme identified that catalyzes manganese-dependent oxidation of oxalate. In previous work, we have shown that the dominant contribution to catalysis comes from the monoprotonated form of oxalate binding to a form of the enzyme in which an active site carboxylic acid residue must be unprotonated. CsOxOx shares greatest sequence homology with bicupin microbial oxalate decarboxylases (OxDC) and the 241-244DASN region of the N-terminal Mn binding domain of CsOxOx is analogous to the lid region of OxDC that has been shown to determine reaction specificity. We have prepared a series of CsOxOx mutants to probe this region and to identify the carboxylate residue implicated in catalysis. The pH profile of the D241A CsOxOx mutant suggests that the protonation state of aspartic acid 241 is mechanistically significant and that catalysis takes place at the N-terminal Mn binding site. The observation that the D241S CsOxOx mutation eliminates Mn binding to both the N- and C- terminal Mn binding sites suggests that both sites must be intact for Mn incorporation into either site. The introduction of a proton donor into the N-terminal Mn binding site (CsOxOx A242E mutant) does not affect reaction specificity. Mutation of conserved arginine residues further support that catalysis takes place at the N-terminal Mn binding site and that both sites must be intact for Mn incorporation into either site.http://europepmc.org/articles/PMC3585803?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ellen W Moomaw
Eric Hoffer
Patricia Moussatche
John C Salerno
Morgan Grant
Bridget Immelman
Richard Uberto
Andrew Ozarowski
Alexander Angerhofer
spellingShingle Ellen W Moomaw
Eric Hoffer
Patricia Moussatche
John C Salerno
Morgan Grant
Bridget Immelman
Richard Uberto
Andrew Ozarowski
Alexander Angerhofer
Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
PLoS ONE
author_facet Ellen W Moomaw
Eric Hoffer
Patricia Moussatche
John C Salerno
Morgan Grant
Bridget Immelman
Richard Uberto
Andrew Ozarowski
Alexander Angerhofer
author_sort Ellen W Moomaw
title Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
title_short Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
title_full Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
title_fullStr Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
title_full_unstemmed Kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
title_sort kinetic and spectroscopic studies of bicupin oxalate oxidase and putative active site mutants.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description Ceriporiopsis subvermispora oxalate oxidase (CsOxOx) is the first bicupin enzyme identified that catalyzes manganese-dependent oxidation of oxalate. In previous work, we have shown that the dominant contribution to catalysis comes from the monoprotonated form of oxalate binding to a form of the enzyme in which an active site carboxylic acid residue must be unprotonated. CsOxOx shares greatest sequence homology with bicupin microbial oxalate decarboxylases (OxDC) and the 241-244DASN region of the N-terminal Mn binding domain of CsOxOx is analogous to the lid region of OxDC that has been shown to determine reaction specificity. We have prepared a series of CsOxOx mutants to probe this region and to identify the carboxylate residue implicated in catalysis. The pH profile of the D241A CsOxOx mutant suggests that the protonation state of aspartic acid 241 is mechanistically significant and that catalysis takes place at the N-terminal Mn binding site. The observation that the D241S CsOxOx mutation eliminates Mn binding to both the N- and C- terminal Mn binding sites suggests that both sites must be intact for Mn incorporation into either site. The introduction of a proton donor into the N-terminal Mn binding site (CsOxOx A242E mutant) does not affect reaction specificity. Mutation of conserved arginine residues further support that catalysis takes place at the N-terminal Mn binding site and that both sites must be intact for Mn incorporation into either site.
url http://europepmc.org/articles/PMC3585803?pdf=render
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