Literature DB >> 23071108

Two oxidation sites for low redox potential substrates: a directed mutagenesis, kinetic, and crystallographic study on Pleurotus eryngii versatile peroxidase.

María Morales1, María J Mate, Antonio Romero, María Jesús Martínez, Ángel T Martínez, Francisco J Ruiz-Dueñas.   

Abstract

Versatile peroxidase shares with manganese peroxidase and lignin peroxidase the ability to oxidize Mn(2+) and high redox potential aromatic compounds, respectively. Moreover, it is also able to oxidize phenols (and low redox potential dyes) at two catalytic sites, as shown by biphasic kinetics. A high efficiency site (with 2,6-dimethoxyphenol and p-hydroquinone catalytic efficiencies of ∼70 and ∼700 s(-1) mM(-1), respectively) was localized at the same exposed Trp-164 responsible for high redox potential substrate oxidation (as shown by activity loss in the W164S variant). The second site, characterized by low catalytic efficiency (∼3 and ∼50 s(-1) mM(-1) for 2,6-dimethoxyphenol and p-hydroquinone, respectively) was localized at the main heme access channel. Steady-state and transient-state kinetics for oxidation of phenols and dyes at the latter site were improved when side chains of residues forming the heme channel edge were removed in single and multiple variants. Among them, the E140G/K176G, E140G/P141G/K176G, and E140G/W164S/K176G variants attained catalytic efficiencies for oxidation of 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonate) at the heme channel similar to those of the exposed tryptophan site. The heme channel enlargement shown by x-ray diffraction of the E140G, P141G, K176G, and E140G/K176G variants would allow a better substrate accommodation near the heme, as revealed by the up to 26-fold lower K(m) values (compared with native VP). The resulting interactions were shown by the x-ray structure of the E140G-guaiacol complex, which includes two H-bonds of the substrate with Arg-43 and Pro-139 in the distal heme pocket (at the end of the heme channel) and several hydrophobic interactions with other residues and the heme cofactor.

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Year:  2012        PMID: 23071108      PMCID: PMC3511044          DOI: 10.1074/jbc.M112.405548

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  36 in total

1.  Pleurotus ostreatus heme peroxidases: an in silico analysis from the genome sequence to the enzyme molecular structure.

Authors:  Francisco J Ruiz-Dueñas; Elena Fernández; María Jesús Martínez; Angel T Martínez
Journal:  C R Biol       Date:  2011-08-25       Impact factor: 1.583

2.  Optical, NMR and EPR properties of horseradish peroxidase and its donor complexes.

Authors:  J S Leigh; M M Maltempo; P I Ohlsson; K G Paul
Journal:  FEBS Lett       Date:  1975-03-01       Impact factor: 4.124

Review 3.  Substrate binding and catalysis in heme peroxidases.

Authors:  A T Smith; N C Veitch
Journal:  Curr Opin Chem Biol       Date:  1998-04       Impact factor: 8.822

4.  The structures of the horseradish peroxidase C-ferulic acid complex and the ternary complex with cyanide suggest how peroxidases oxidize small phenolic substrates.

Authors:  A Henriksen; A T Smith; M Gajhede
Journal:  J Biol Chem       Date:  1999-12-03       Impact factor: 5.157

5.  Satisfying hydrogen bonding potential in proteins.

Authors:  I K McDonald; J M Thornton
Journal:  J Mol Biol       Date:  1994-05-20       Impact factor: 5.469

6.  Reactivity of horseradish peroxidase compound II toward substrates: kinetic evidence for a two-step mechanism.

Authors:  J N Rodríguez-López; M A Gilabert; J Tudela; R N Thorneley; F García-Cánovas
Journal:  Biochemistry       Date:  2000-10-31       Impact factor: 3.162

7.  Versatile peroxidase oxidation of high redox potential aromatic compounds: site-directed mutagenesis, spectroscopic and crystallographic investigation of three long-range electron transfer pathways.

Authors:  Marta Pérez-Boada; Francisco J Ruiz-Dueñas; Rebecca Pogni; Riccardo Basosi; Thomas Choinowski; María Jesús Martínez; Klaus Piontek; Angel T Martínez
Journal:  J Mol Biol       Date:  2005-10-03       Impact factor: 5.469

8.  Site-directed mutagenesis of the catalytic tryptophan environment in Pleurotus eryngii versatile peroxidase.

Authors:  Francisco J Ruiz-Dueñas; María Morales; María J Mate; Antonio Romero; María Jesús Martínez; Andrew T Smith; Angel T Martínez
Journal:  Biochemistry       Date:  2008-01-18       Impact factor: 3.162

Review 9.  Enzymatic delignification of plant cell wall: from nature to mill.

Authors:  Angel T Martínez; Francisco J Ruiz-Dueñas; María Jesús Martínez; José C Del Río; Ana Gutiérrez
Journal:  Curr Opin Biotechnol       Date:  2009-06-06       Impact factor: 9.740

10.  Oxidation of guaiacol by lignin peroxidase. Role of veratryl alcohol.

Authors:  R S Koduri; M Tien
Journal:  J Biol Chem       Date:  1995-09-22       Impact factor: 5.157

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  22 in total

1.  Characterization of Dye-decolorizing Peroxidase (DyP) from Thermomonospora curvata Reveals Unique Catalytic Properties of A-type DyPs.

Authors:  Chao Chen; Ruben Shrestha; Kaimin Jia; Philip F Gao; Brian V Geisbrecht; Stefan H Bossmann; Jishu Shi; Ping Li
Journal:  J Biol Chem       Date:  2015-07-23       Impact factor: 5.157

2.  EPR and LC-MS studies on the mechanism of industrial dye decolorization by versatile peroxidase from Bjerkandera adusta.

Authors:  Maria Camilla Baratto; Karla Juarez-Moreno; Rebecca Pogni; Riccardo Basosi; Rafael Vazquez-Duhalt
Journal:  Environ Sci Pollut Res Int       Date:  2015-01-09       Impact factor: 4.223

3.  Effects of calmodulin on expression of lignin-modifying enzymes in Pleurotus ostreatus.

Authors:  Takashi Suetomi; Takaiku Sakamoto; Yoshitaka Tokunaga; Toru Kameyama; Yoichi Honda; Hisatoshi Kamitsuji; Isamu Kameshita; Kousuke Izumitsu; Kazumi Suzuki; Toshikazu Irie
Journal:  Curr Genet       Date:  2014-11-19       Impact factor: 3.886

4.  A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion.

Authors:  Wen Kong; Xiao Fu; Lei Wang; Ahmad Alhujaily; Jingli Zhang; Fuying Ma; Xiaoyu Zhang; Hongbo Yu
Journal:  Biotechnol Biofuels       Date:  2017-09-13       Impact factor: 6.040

5.  Redundancy among manganese peroxidases in Pleurotus ostreatus.

Authors:  Tomer M Salame; Doriv Knop; Dana Levinson; Oded Yarden; Yitzhak Hadar
Journal:  Appl Environ Microbiol       Date:  2013-02-01       Impact factor: 4.792

6.  Limits of Versatility of Versatile Peroxidase.

Authors:  Doriv Knop; Dana Levinson; Arik Makovitzki; Avi Agami; Elad Lerer; Avishai Mimran; Oded Yarden; Yitzhak Hadar
Journal:  Appl Environ Microbiol       Date:  2016-06-30       Impact factor: 4.792

7.  Improving the oxidative stability of a high redox potential fungal peroxidase by rational design.

Authors:  Verónica Sáez-Jiménez; Sandra Acebes; Victor Guallar; Angel T Martínez; Francisco J Ruiz-Dueñas
Journal:  PLoS One       Date:  2015-04-29       Impact factor: 3.240

8.  Ligninolytic peroxidase genes in the oyster mushroom genome: heterologous expression, molecular structure, catalytic and stability properties, and lignin-degrading ability.

Authors:  Elena Fernández-Fueyo; Francisco J Ruiz-Dueñas; María Jesús Martínez; Antonio Romero; Kenneth E Hammel; Francisco Javier Medrano; Angel T Martínez
Journal:  Biotechnol Biofuels       Date:  2014-01-03       Impact factor: 6.040

9.  A dye-decolorizing peroxidase from Bacillus subtilis exhibiting substrate-dependent optimum temperature for dyes and β-ether lignin dimer.

Authors:  Kyoungseon Min; Gyeongtaek Gong; Han Min Woo; Yunje Kim; Youngsoon Um
Journal:  Sci Rep       Date:  2015-02-04       Impact factor: 4.379

10.  Demonstration of Lignin-to-Peroxidase Direct Electron Transfer: A TRANSIENT-STATE KINETICS, DIRECTED MUTAGENESIS, EPR, AND NMR STUDY.

Authors:  Verónica Sáez-Jiménez; Maria Camilla Baratto; Rebecca Pogni; Jorge Rencoret; Ana Gutiérrez; José Ignacio Santos; Angel T Martínez; Francisco Javier Ruiz-Dueñas
Journal:  J Biol Chem       Date:  2015-08-03       Impact factor: 5.157

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