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Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase

[Image: see text] Catalase-peroxidases (KatGs) are unique bifunctional heme peroxidases with an additional posttranslationally formed redox-active Met-Tyr-Trp cofactor that is essential for catalase activity. On the basis of studies of bacterial KatGs, controversial mechanisms of hydrogen peroxide o...

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Autores principales: Gasselhuber, Bernhard, Graf, Michael M. H., Jakopitsch, Christa, Zamocky, Marcel, Nicolussi, Andrea, Furtmüller, Paul G., Oostenbrink, Chris, Carpena, Xavi, Obinger, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2016
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4928148/
https://www.ncbi.nlm.nih.gov/pubmed/27293030
http://dx.doi.org/10.1021/acs.biochem.6b00436
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author Gasselhuber, Bernhard
Graf, Michael M. H.
Jakopitsch, Christa
Zamocky, Marcel
Nicolussi, Andrea
Furtmüller, Paul G.
Oostenbrink, Chris
Carpena, Xavi
Obinger, Christian
author_facet Gasselhuber, Bernhard
Graf, Michael M. H.
Jakopitsch, Christa
Zamocky, Marcel
Nicolussi, Andrea
Furtmüller, Paul G.
Oostenbrink, Chris
Carpena, Xavi
Obinger, Christian
author_sort Gasselhuber, Bernhard
collection PubMed
description [Image: see text] Catalase-peroxidases (KatGs) are unique bifunctional heme peroxidases with an additional posttranslationally formed redox-active Met-Tyr-Trp cofactor that is essential for catalase activity. On the basis of studies of bacterial KatGs, controversial mechanisms of hydrogen peroxide oxidation were proposed. The recent discovery of eukaryotic KatGs with differing pH optima of catalase activity now allows us to scrutinize those postulated reaction mechanisms. In our study, secreted KatG from the fungus Magnaporthe grisea (MagKatG2) was used to analyze the role of a remote KatG-typical mobile arginine that was shown to interact with the Met-Tyr-Trp adduct in a pH-dependent manner in bacterial KatGs. Here we present crystal structures of MagKatG2 at pH 3.0, 5.5, and 7.0 and investigate the mobility of Arg461 by molecular dynamics simulation. Data suggest that at pH ≥4.5 Arg461 mostly interacts with the deprotonated adduct Tyr. Elimination of Arg461 by mutation to Ala slightly increases the thermal stability but does not alter the active site architecture or the kinetics of cyanide binding. However, the variant Arg461Ala lost the wild-type-typical optimum of catalase activity at pH 5.25 (k(cat) = 6450 s(–1)) but exhibits a broad plateau between pH 4.5 and 7.5 (k(cat) = 270 s(–1) at pH 5.5). Moreover, significant differences in the kinetics of interconversion of redox intermediates of wild-type and mutant protein mixed with either peroxyacetic acid or hydrogen peroxide are observed. These findings together with published data from bacterial KatGs allow us to propose a role of Arg461 in the H(2)O(2) oxidation reaction of KatG.
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spelling pubmed-49281482016-07-01 Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase Gasselhuber, Bernhard Graf, Michael M. H. Jakopitsch, Christa Zamocky, Marcel Nicolussi, Andrea Furtmüller, Paul G. Oostenbrink, Chris Carpena, Xavi Obinger, Christian Biochemistry [Image: see text] Catalase-peroxidases (KatGs) are unique bifunctional heme peroxidases with an additional posttranslationally formed redox-active Met-Tyr-Trp cofactor that is essential for catalase activity. On the basis of studies of bacterial KatGs, controversial mechanisms of hydrogen peroxide oxidation were proposed. The recent discovery of eukaryotic KatGs with differing pH optima of catalase activity now allows us to scrutinize those postulated reaction mechanisms. In our study, secreted KatG from the fungus Magnaporthe grisea (MagKatG2) was used to analyze the role of a remote KatG-typical mobile arginine that was shown to interact with the Met-Tyr-Trp adduct in a pH-dependent manner in bacterial KatGs. Here we present crystal structures of MagKatG2 at pH 3.0, 5.5, and 7.0 and investigate the mobility of Arg461 by molecular dynamics simulation. Data suggest that at pH ≥4.5 Arg461 mostly interacts with the deprotonated adduct Tyr. Elimination of Arg461 by mutation to Ala slightly increases the thermal stability but does not alter the active site architecture or the kinetics of cyanide binding. However, the variant Arg461Ala lost the wild-type-typical optimum of catalase activity at pH 5.25 (k(cat) = 6450 s(–1)) but exhibits a broad plateau between pH 4.5 and 7.5 (k(cat) = 270 s(–1) at pH 5.5). Moreover, significant differences in the kinetics of interconversion of redox intermediates of wild-type and mutant protein mixed with either peroxyacetic acid or hydrogen peroxide are observed. These findings together with published data from bacterial KatGs allow us to propose a role of Arg461 in the H(2)O(2) oxidation reaction of KatG. American Chemical Society 2016-06-13 2016-06-28 /pmc/articles/PMC4928148/ /pubmed/27293030 http://dx.doi.org/10.1021/acs.biochem.6b00436 Text en Copyright © 2016 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Gasselhuber, Bernhard
Graf, Michael M. H.
Jakopitsch, Christa
Zamocky, Marcel
Nicolussi, Andrea
Furtmüller, Paul G.
Oostenbrink, Chris
Carpena, Xavi
Obinger, Christian
Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title_full Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title_fullStr Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title_full_unstemmed Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title_short Interaction with the Redox Cofactor MYW and Functional Role of a Mobile Arginine in Eukaryotic Catalase-Peroxidase
title_sort interaction with the redox cofactor myw and functional role of a mobile arginine in eukaryotic catalase-peroxidase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4928148/
https://www.ncbi.nlm.nih.gov/pubmed/27293030
http://dx.doi.org/10.1021/acs.biochem.6b00436
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