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Peroxidase lignin

Perez J, TW Jeffries (1990) Mineralization of C-ring-labelled synthetic lignin correlates with the production of lignin peroxidase, not of manganese peroxidase or laccase. Appl Environ Microbiol 56 1806-1812. [Pg.86]

Sarkanen S, RA Razal, T Piccariello, E Yamamoto, NG Lewis (1991) Lignin peroxidase toward a clarification of its role in vivo. J Biol Chem 266 3636-3643. [Pg.87]

Hammel KE, MD Mozuch, KA Jensen, PJ Kersten (1994) HjOj recycling during oxidation of the arylglycerol P-aryl ether lignin structure by lignin peroxidase and glyoxal oxidase. Biochemistry 33 13349-13354. [Pg.139]

Kersten PJ (1990) Glyoxal oxidase of Phanerochaete chrysosporium its characterization and activation by lignin peroxidase. Proc Natl Acad Sci USA 87 2936-2940. [Pg.140]

Bonnarme P, TW Jeffries (1990) Mn(ll) regulation of lignin peroxidases and manganese-dependent peroxidases from lignin-degrading white-rot fungi. Appl Environ Microbiol 56 210-217. [Pg.189]

Expression of lignin peroxidases in Phanerochaete chtysosporium is induced by nitrogen-limitation, and by the concentration of Mn (11) in the medium (Perez and Jeffries 1990). [Pg.220]

The inclusion of nitrate may lead to various complications, which have been discussed in Chapter 2. In addition, the nitrogen status of the growth medium determines the levels of lignin peroxidases and manganese-dependent peroxidases that are synthesized in Phanerochaete chrysosporium. The role of Mn concentration is noted later and in Chapter 3, Part 5. [Pg.253]

Van der Woude MW, K Boominathan, CA Reddy (1993) Nitrogen regulation of lignin peroxidase and manganese-dependent peroxidase production is independent of carbon and manganese regulation in Phanerochaete chrysosporium. Arch Microbiol 160 1-4. [Pg.276]

Tatarko M, JA Bumpus (1993) Biodegradation of phenanthrene by Phanerochaete chrysporium on the role of lignin peroxidase. Lett Appl Microbiol 17 20-24. [Pg.423]

The degradation of chlorinated phenols has been examined with the white-rot basidiomy-cete Phanerochaete chrysosporium under conditions of nitrogen limitation, and apparently involves both lignin peroxidase and manganese-dependent peroxidase activities (Valli and Gold 1991). [Pg.486]

Pieper DH, R Winkler, H Sandermann (1992) Eormation of a toxic dimerization product of 3,4-dichloroani-line by lignin peroxidase from Phanerochaete chrysosporium. Angewandte Chemie 104 60-61. [Pg.674]

Bumpus JA, M Tatarko (1994) Biodegradation of 2,4,6-trinitrotoluene by Phanerochaete chrysosporium identification of initial degradation products and the discovery of a metabolite that inhibits lignin peroxidases. Curr Microbiol 28 185-190. [Pg.678]

Wondrack, L. Szanto, M., and Wood, W. A., Depolymerization of Water-Soluble Coal Polymer from Subbituminous Coal and Lignite by Lignin Peroxidase. Applied Biochemistry and Biotechnology, 1989. 20-1 pp. 765-780. [Pg.225]

Vazquez-Duhalt, R. Westlake, D. W. S., and Fedorak, P. M., Lignin Peroxidase Oxidation of Aromatic-Compounds in Systems Containing Organic-Solvents. Applied and Environmental Microbiology, 1994. 60(2) pp. 459-466. [Pg.225]

Torres, E. Tinoco, R., and VazquezDuhalt, R., Solvent Hydrophobicity Predicts Biocatalytic Behaviour of Lignin Peroxidase and Cytochrome C in Aqueous Solution of Water-Miscible Organic Solvents. Journal of Biotechnology, 1996. 49(1-3) pp. 59-67. [Pg.225]


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Activity of lignin peroxidase

Catalyzed by lignin peroxidase

Degradation by lignin peroxidase

Enzyme lignin peroxidase

Lignin peroxidase , production

Lignin peroxidase active-site structure

Lignin peroxidase catalysis

Lignin peroxidase crystal structures

Lignin peroxidase hydrophobicity

Lignin peroxidase isoenzymes

Lignin peroxidase production regulation

Lignin peroxidase secretion

Lignin peroxidase stability

Lignin peroxidase stability effects

Lignin peroxidase, Phanerochaete

Lignin peroxidase, Phanerochaete chrysosporium

Lignine peroxidase

Lignine peroxidase

Oxidation lignin peroxidase

Peroxidases lignin peroxidase

Peroxidases, lignin degradation

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