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Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties

Laccases are members of a large family of multicopper oxidases that catalyze the oxidation of a wide range of organic and inorganic substrates accompanied by the reduction of dioxygen to water. These enzymes contain four Cu atoms per molecule organized into three sites: T1, T2 and T3. In all laccase...

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Autores principales: Osipov, Evgeny, Polyakov, Konstantin, Kittl, Roman, Shleev, Sergey, Dorovatovsky, Pavel, Tikhonova, Tamara, Hann, Stephan, Ludwig, Roland, Popov, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4220974/
https://www.ncbi.nlm.nih.gov/pubmed/25372682
http://dx.doi.org/10.1107/S1399004714020380
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author Osipov, Evgeny
Polyakov, Konstantin
Kittl, Roman
Shleev, Sergey
Dorovatovsky, Pavel
Tikhonova, Tamara
Hann, Stephan
Ludwig, Roland
Popov, Vladimir
author_facet Osipov, Evgeny
Polyakov, Konstantin
Kittl, Roman
Shleev, Sergey
Dorovatovsky, Pavel
Tikhonova, Tamara
Hann, Stephan
Ludwig, Roland
Popov, Vladimir
author_sort Osipov, Evgeny
collection PubMed
description Laccases are members of a large family of multicopper oxidases that catalyze the oxidation of a wide range of organic and inorganic substrates accompanied by the reduction of dioxygen to water. These enzymes contain four Cu atoms per molecule organized into three sites: T1, T2 and T3. In all laccases, the T1 copper ion is coordinated by two histidines and one cysteine in the equatorial plane and is covered by the side chains of hydrophobic residues in the axial positions. The redox potential of the T1 copper ion influences the enzymatic reaction and is determined by the nature of the axial ligands and the structure of the second coordination sphere. In this work, the laccase from the ascomycete Botrytis aclada was studied, which contains conserved Ile491 and nonconserved Leu499 residues in the axial positions. The three-dimensional structures of the wild-type enzyme and the L499M mutant were determined by X-ray crystallography at 1.7 Å resolution. Crystals suitable for X-ray analysis could only be grown after deglycosylation. Both structures did not contain the T2 copper ion. The catalytic properties of the enzyme were characterized and the redox potentials of both enzyme forms were determined: E (0) = 720 and 580 mV for the wild-type enzyme and the mutant, respectively. Since the structures of the wild-type and mutant forms are very similar, the change in the redox potential can be related to the L499M mutation in the T1 site of the enzyme.
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spelling pubmed-42209742014-11-13 Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties Osipov, Evgeny Polyakov, Konstantin Kittl, Roman Shleev, Sergey Dorovatovsky, Pavel Tikhonova, Tamara Hann, Stephan Ludwig, Roland Popov, Vladimir Acta Crystallogr D Biol Crystallogr Research Papers Laccases are members of a large family of multicopper oxidases that catalyze the oxidation of a wide range of organic and inorganic substrates accompanied by the reduction of dioxygen to water. These enzymes contain four Cu atoms per molecule organized into three sites: T1, T2 and T3. In all laccases, the T1 copper ion is coordinated by two histidines and one cysteine in the equatorial plane and is covered by the side chains of hydrophobic residues in the axial positions. The redox potential of the T1 copper ion influences the enzymatic reaction and is determined by the nature of the axial ligands and the structure of the second coordination sphere. In this work, the laccase from the ascomycete Botrytis aclada was studied, which contains conserved Ile491 and nonconserved Leu499 residues in the axial positions. The three-dimensional structures of the wild-type enzyme and the L499M mutant were determined by X-ray crystallography at 1.7 Å resolution. Crystals suitable for X-ray analysis could only be grown after deglycosylation. Both structures did not contain the T2 copper ion. The catalytic properties of the enzyme were characterized and the redox potentials of both enzyme forms were determined: E (0) = 720 and 580 mV for the wild-type enzyme and the mutant, respectively. Since the structures of the wild-type and mutant forms are very similar, the change in the redox potential can be related to the L499M mutation in the T1 site of the enzyme. International Union of Crystallography 2014-10-23 /pmc/articles/PMC4220974/ /pubmed/25372682 http://dx.doi.org/10.1107/S1399004714020380 Text en © Osipov et al. 2014 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Osipov, Evgeny
Polyakov, Konstantin
Kittl, Roman
Shleev, Sergey
Dorovatovsky, Pavel
Tikhonova, Tamara
Hann, Stephan
Ludwig, Roland
Popov, Vladimir
Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title_full Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title_fullStr Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title_full_unstemmed Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title_short Effect of the L499M mutation of the ascomycetous Botrytis aclada laccase on redox potential and catalytic properties
title_sort effect of the l499m mutation of the ascomycetous botrytis aclada laccase on redox potential and catalytic properties
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4220974/
https://www.ncbi.nlm.nih.gov/pubmed/25372682
http://dx.doi.org/10.1107/S1399004714020380
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