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Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1

Mouse aldehyde oxidase (mAOX1) forms a homodimer and belongs to the xanthine oxidase family of molybdoenzymes which are characterized by an essential equatorial sulfur ligand coordinated to the molybdenum atom. In general, mammalian AOs are characterized by broad substrate specificity and an yet obs...

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Autores principales: Schumann, Silvia, Terao, Mineko, Garattini, Enrico, Saggu, Miguel, Lendzian, Friedhelm, Hildebrandt, Peter, Leimkühler, Silke
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2671166/
https://www.ncbi.nlm.nih.gov/pubmed/19401776
http://dx.doi.org/10.1371/journal.pone.0005348
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author Schumann, Silvia
Terao, Mineko
Garattini, Enrico
Saggu, Miguel
Lendzian, Friedhelm
Hildebrandt, Peter
Leimkühler, Silke
author_facet Schumann, Silvia
Terao, Mineko
Garattini, Enrico
Saggu, Miguel
Lendzian, Friedhelm
Hildebrandt, Peter
Leimkühler, Silke
author_sort Schumann, Silvia
collection PubMed
description Mouse aldehyde oxidase (mAOX1) forms a homodimer and belongs to the xanthine oxidase family of molybdoenzymes which are characterized by an essential equatorial sulfur ligand coordinated to the molybdenum atom. In general, mammalian AOs are characterized by broad substrate specificity and an yet obscure physiological function. To define the physiological substrates and the enzymatic characteristics of mAOX1, we established a system for the heterologous expression of the enzyme in Eschericia coli. The recombinant protein showed spectral features and a range of substrate specificity similar to the native protein purified from mouse liver. The EPR data of recombinant mAOX1 were similar to those of AO from rabbit liver, but differed from the homologous xanthine oxidoreductase enzymes. Site-directed mutagenesis of amino acids Val806, Met884 and Glu1265 at the active site resulted in a drastic decrease in the oxidation of aldehydes with no increase in the oxidation of purine substrates. The double mutant V806E/M884R and the single mutant E1265Q were catalytically inactive enzymes regardless of the aldehyde or purine substrates tested. Our results show that only Glu1265 is essential for the catalytic activity by initiating the base-catalyzed mechanism of substrate oxidation. In addition, it is concluded that the substrate specificity of molybdo-flavoenzymes is more complex and not only defined by the three characterized amino acids in the active site.
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spelling pubmed-26711662009-04-29 Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1 Schumann, Silvia Terao, Mineko Garattini, Enrico Saggu, Miguel Lendzian, Friedhelm Hildebrandt, Peter Leimkühler, Silke PLoS One Research Article Mouse aldehyde oxidase (mAOX1) forms a homodimer and belongs to the xanthine oxidase family of molybdoenzymes which are characterized by an essential equatorial sulfur ligand coordinated to the molybdenum atom. In general, mammalian AOs are characterized by broad substrate specificity and an yet obscure physiological function. To define the physiological substrates and the enzymatic characteristics of mAOX1, we established a system for the heterologous expression of the enzyme in Eschericia coli. The recombinant protein showed spectral features and a range of substrate specificity similar to the native protein purified from mouse liver. The EPR data of recombinant mAOX1 were similar to those of AO from rabbit liver, but differed from the homologous xanthine oxidoreductase enzymes. Site-directed mutagenesis of amino acids Val806, Met884 and Glu1265 at the active site resulted in a drastic decrease in the oxidation of aldehydes with no increase in the oxidation of purine substrates. The double mutant V806E/M884R and the single mutant E1265Q were catalytically inactive enzymes regardless of the aldehyde or purine substrates tested. Our results show that only Glu1265 is essential for the catalytic activity by initiating the base-catalyzed mechanism of substrate oxidation. In addition, it is concluded that the substrate specificity of molybdo-flavoenzymes is more complex and not only defined by the three characterized amino acids in the active site. Public Library of Science 2009-04-29 /pmc/articles/PMC2671166/ /pubmed/19401776 http://dx.doi.org/10.1371/journal.pone.0005348 Text en Schumann et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Schumann, Silvia
Terao, Mineko
Garattini, Enrico
Saggu, Miguel
Lendzian, Friedhelm
Hildebrandt, Peter
Leimkühler, Silke
Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title_full Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title_fullStr Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title_full_unstemmed Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title_short Site Directed Mutagenesis of Amino Acid Residues at the Active Site of Mouse Aldehyde Oxidase AOX1
title_sort site directed mutagenesis of amino acid residues at the active site of mouse aldehyde oxidase aox1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2671166/
https://www.ncbi.nlm.nih.gov/pubmed/19401776
http://dx.doi.org/10.1371/journal.pone.0005348
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