Literature DB >> 15475344

Structure-based engineering of Alcaligenes xylosoxidans copper-containing nitrite reductase enhances intermolecular electron transfer reaction with pseudoazurin.

Kunishige Kataoka1, Kazuya Yamaguchi, Mayuko Kobayashi, Tatsuya Mori, Nobuyuki Bokui, Shinnichiro Suzuki.   

Abstract

The intermolecular electron transfer from Achromobacter cycloclastes pseudoazurin (AcPAZ) to wild-type and mutant Alcaligenes xylosoxidans nitrite reductases (AxNIRs) was investigated using steady-state kinetics and electrochemical methods. The affinity and the electron transfer reaction constant (k(ET)) are considerably lower between AcPAZ and AxNIR (K(m) = 1.34 mM and k(ET) = 0.87 x 10(5) M(-1) s(-1)) than between AcPAZ and its cognate nitrite reductase (AcNIR) (K(m) = 20 microM and k(ET) = 7.3 x 10(5) M(-1) s(-1)). A negatively charged hydrophobic patch, comprising seven acidic residues around the type 1 copper site in AcNIR, is the site of protein-protein interaction with a positively charged hydrophobic patch on AcPAZ. In AxNIR, four of the negatively charged residues (Glu-112, Glu-133, Glu-195, and Asp-199) are conserved at the corresponding positions of AcNIR, whereas the other three residues are not acidic amino acids but neutral amino acids (Ala-83, Ala-191, and Gly-198). Seven mutant AxNIRs with additional negatively charged residues surrounding the hydrophobic patch of AxNIR (A83D, A191E, G198E, A83D/A191E, A93D/G198E, A191E/G198E, and A83D/A191E/G198E) were prepared to enhance the specificity of the electron transport reaction between AcPAZ and AxNIR. The k(ET) values of these mutants become progressively larger as the number of mutated residues increases. The K(m) and k(ET) values of A83D/A191E/G198E (K(m) = 88 microM and k(ET) = 4.1 x 10(5) M(-1) s(-1)) are 15-fold smaller and 4.7-fold larger than those of wild-type AxNIR, respectively. These results suggest that the introduction of negatively charged residues into the docking surface of AxNIR facilitates both the formation of electron transport complex and the electron transfer reaction.

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Year:  2004        PMID: 15475344     DOI: 10.1074/jbc.M410198200

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


  13 in total

1.  A new CuZ active form in the catalytic reduction of N(2)O by nitrous oxide reductase from Pseudomonas nautica.

Authors:  Simone Dell'Acqua; Sofia R Pauleta; Patrícia M Paes de Sousa; Enrico Monzani; Luigi Casella; José J G Moura; Isabel Moura
Journal:  J Biol Inorg Chem       Date:  2010-04-27       Impact factor: 3.358

2.  Demonstration of proton-coupled electron transfer in the copper-containing nitrite reductases.

Authors:  Sibylle Brenner; Derren J Heyes; Sam Hay; Michael A Hough; Robert R Eady; S Samar Hasnain; Nigel S Scrutton
Journal:  J Biol Chem       Date:  2009-07-07       Impact factor: 5.157

3.  The electron transfer complex between nitrous oxide reductase and its electron donors.

Authors:  Simone Dell'acqua; Isabel Moura; José J G Moura; Sofia R Pauleta
Journal:  J Biol Inorg Chem       Date:  2011-07-08       Impact factor: 3.358

Review 4.  Metalloproteins containing cytochrome, iron-sulfur, or copper redox centers.

Authors:  Jing Liu; Saumen Chakraborty; Parisa Hosseinzadeh; Yang Yu; Shiliang Tian; Igor Petrik; Ambika Bhagi; Yi Lu
Journal:  Chem Rev       Date:  2014-04-23       Impact factor: 60.622

5.  Manipulating electron transfer - the influence of substituents on novel copper guanidine quinolinyl complexes.

Authors:  Joshua Heck; Fabian Metz; Sören Buchenau; Melissa Teubner; Benjamin Grimm-Lebsanft; Thomas P Spaniol; Alexander Hoffmann; Michael A Rübhausen; Sonja Herres-Pawlis
Journal:  Chem Sci       Date:  2022-07-07       Impact factor: 9.969

6.  Structural basis of inter-protein electron transfer for nitrite reduction in denitrification.

Authors:  Masaki Nojiri; Hiroyasu Koteishi; Takuya Nakagami; Kazuo Kobayashi; Tsuyoshi Inoue; Kazuya Yamaguchi; Shinnichiro Suzuki
Journal:  Nature       Date:  2009-11-05       Impact factor: 49.962

7.  Copper nitrite reductase from Sinorhizobium meliloti 2011: Crystal structure and interaction with the physiological versus a nonmetabolically related cupredoxin-like mediator.

Authors:  Cintia Soledad Ramírez; Carmien Tolmie; Diederik Johannes Opperman; Pablo Javier González; María Gabriela Rivas; Carlos Dante Brondino; Felix Martín Ferroni
Journal:  Protein Sci       Date:  2021-10-05       Impact factor: 6.725

8.  A nitrite biosensor based on co-immobilization of nitrite reductase and viologen-modified chitosan on a glassy carbon electrode.

Authors:  De Quan; Woonsup Shin
Journal:  Sensors (Basel)       Date:  2010-06-22       Impact factor: 3.576

9.  Expression, and molecular and enzymatic characterization of Cu-containing nitrite reductase from a marine ammonia-oxidizing gammaproteobacterium, Nitrosococcus oceani.

Authors:  Keitaro Kondo; Katsuhiko Yoshimatsu; Taketomo Fujiwara
Journal:  Microbes Environ       Date:  2012-04-28       Impact factor: 2.912

10.  Mediated catalysis of Paracoccus pantotrophus cytochrome c peroxidase by P. pantotrophus pseudoazurin: kinetics of intermolecular electron transfer.

Authors:  P M Paes de Sousa; S R Pauleta; M L Simões Gonçalves; G W Pettigrew; I Moura; M M Correia Dos Santos; J J G Moura
Journal:  J Biol Inorg Chem       Date:  2007-03-15       Impact factor: 3.862

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