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Catalytic Profile of Arabidopsis Peroxidases, AtPrx-2, 25 and 71, Contributing to Stem Lignification
by
Nagano, Mariko
, Tsutsumi, Yuji
, Shigeto, Jun
, Fujita, Koki
in
Alcohol
/ Alcohols
/ Amino Acid Sequence
/ Amino acids
/ Arabidopsis
/ Arabidopsis - enzymology
/ Arabidopsis Proteins - chemistry
/ Arabidopsis Proteins - isolation & purification
/ Arabidopsis thaliana
/ Biocatalysis
/ Biochemistry
/ Biology and Life Sciences
/ Biosynthesis
/ Catalysis
/ Catalytic Domain
/ Coupling (molecular)
/ Cytochromes c - chemistry
/ E coli
/ Enzymes
/ Escherichia coli
/ Ferrocytochrome c
/ Guaiacol
/ Guaiacol - chemistry
/ Horseradish peroxidase
/ Hydrazones - chemistry
/ Inclusion bodies
/ Lignin
/ Lignin - biosynthesis
/ Models, Molecular
/ Molecular Sequence Data
/ Monomers
/ Mutagenesis
/ Oligomers
/ Oxidation
/ Oxidation-Reduction
/ Peroxidase
/ Peroxidases - chemistry
/ Peroxidases - isolation & purification
/ Physiology
/ Picea abies
/ Plant Stems - enzymology
/ Polymerization
/ Polymers
/ Precursors
/ Protein Refolding
/ Proteins
/ Pyrogallol - analogs & derivatives
/ Pyrogallol - chemistry
/ Recombinant proteins
/ Sinapyl alcohol
/ Stems
/ Studies
/ Substrates
/ Syringaldazine
2014
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Catalytic Profile of Arabidopsis Peroxidases, AtPrx-2, 25 and 71, Contributing to Stem Lignification
by
Nagano, Mariko
, Tsutsumi, Yuji
, Shigeto, Jun
, Fujita, Koki
in
Alcohol
/ Alcohols
/ Amino Acid Sequence
/ Amino acids
/ Arabidopsis
/ Arabidopsis - enzymology
/ Arabidopsis Proteins - chemistry
/ Arabidopsis Proteins - isolation & purification
/ Arabidopsis thaliana
/ Biocatalysis
/ Biochemistry
/ Biology and Life Sciences
/ Biosynthesis
/ Catalysis
/ Catalytic Domain
/ Coupling (molecular)
/ Cytochromes c - chemistry
/ E coli
/ Enzymes
/ Escherichia coli
/ Ferrocytochrome c
/ Guaiacol
/ Guaiacol - chemistry
/ Horseradish peroxidase
/ Hydrazones - chemistry
/ Inclusion bodies
/ Lignin
/ Lignin - biosynthesis
/ Models, Molecular
/ Molecular Sequence Data
/ Monomers
/ Mutagenesis
/ Oligomers
/ Oxidation
/ Oxidation-Reduction
/ Peroxidase
/ Peroxidases - chemistry
/ Peroxidases - isolation & purification
/ Physiology
/ Picea abies
/ Plant Stems - enzymology
/ Polymerization
/ Polymers
/ Precursors
/ Protein Refolding
/ Proteins
/ Pyrogallol - analogs & derivatives
/ Pyrogallol - chemistry
/ Recombinant proteins
/ Sinapyl alcohol
/ Stems
/ Studies
/ Substrates
/ Syringaldazine
2014
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Catalytic Profile of Arabidopsis Peroxidases, AtPrx-2, 25 and 71, Contributing to Stem Lignification
by
Nagano, Mariko
, Tsutsumi, Yuji
, Shigeto, Jun
, Fujita, Koki
in
Alcohol
/ Alcohols
/ Amino Acid Sequence
/ Amino acids
/ Arabidopsis
/ Arabidopsis - enzymology
/ Arabidopsis Proteins - chemistry
/ Arabidopsis Proteins - isolation & purification
/ Arabidopsis thaliana
/ Biocatalysis
/ Biochemistry
/ Biology and Life Sciences
/ Biosynthesis
/ Catalysis
/ Catalytic Domain
/ Coupling (molecular)
/ Cytochromes c - chemistry
/ E coli
/ Enzymes
/ Escherichia coli
/ Ferrocytochrome c
/ Guaiacol
/ Guaiacol - chemistry
/ Horseradish peroxidase
/ Hydrazones - chemistry
/ Inclusion bodies
/ Lignin
/ Lignin - biosynthesis
/ Models, Molecular
/ Molecular Sequence Data
/ Monomers
/ Mutagenesis
/ Oligomers
/ Oxidation
/ Oxidation-Reduction
/ Peroxidase
/ Peroxidases - chemistry
/ Peroxidases - isolation & purification
/ Physiology
/ Picea abies
/ Plant Stems - enzymology
/ Polymerization
/ Polymers
/ Precursors
/ Protein Refolding
/ Proteins
/ Pyrogallol - analogs & derivatives
/ Pyrogallol - chemistry
/ Recombinant proteins
/ Sinapyl alcohol
/ Stems
/ Studies
/ Substrates
/ Syringaldazine
2014
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Catalytic Profile of Arabidopsis Peroxidases, AtPrx-2, 25 and 71, Contributing to Stem Lignification
Journal Article
Catalytic Profile of Arabidopsis Peroxidases, AtPrx-2, 25 and 71, Contributing to Stem Lignification
2014
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Overview
Lignins are aromatic heteropolymers that arise from oxidative coupling of lignin precursors, including lignin monomers (p-coumaryl, coniferyl, and sinapyl alcohols), oligomers, and polymers. Whereas plant peroxidases have been shown to catalyze oxidative coupling of monolignols, the oxidation activity of well-studied plant peroxidases, such as horseradish peroxidase C (HRP-C) and AtPrx53, are quite low for sinapyl alcohol. This characteristic difference has led to controversy regarding the oxidation mechanism of sinapyl alcohol and lignin oligomers and polymers by plant peroxidases. The present study explored the oxidation activities of three plant peroxidases, AtPrx2, AtPrx25, and AtPrx71, which have been already shown to be involved in lignification in the Arabidopsis stem. Recombinant proteins of these peroxidases (rAtPrxs) were produced in Escherichia coli as inclusion bodies and successfully refolded to yield their active forms. rAtPrx2, rAtPrx25, and rAtPrx71 were found to oxidize two syringyl compounds (2,6-dimethoxyphenol and syringaldazine), which were employed here as model monolignol compounds, with higher specific activities than HRP-C and rAtPrx53. Interestingly, rAtPrx2 and rAtPrx71 oxidized syringyl compounds more efficiently than guaiacol. Moreover, assays with ferrocytochrome c as a substrate showed that AtPrx2, AtPrx25, and AtPrx71 possessed the ability to oxidize large molecules. This characteristic may originate in a protein radical. These results suggest that the plant peroxidases responsible for lignin polymerization are able to directly oxidize all lignin precursors.
Publisher
Public Library of Science,Public Library of Science (PLoS)
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