Literature DB >> 12236735

The active site of arsenite oxidase from Alcaligenes faecalis.

Thomas Conrads1, Craig Hemann, Graham N George, Ingrid J Pickering, Roger C Prince, Russ Hille.   

Abstract

Arsenite oxidase, a member of the DMSO reductase family of molybdenum enzymes, has two molecules of guanosine dinucleotide molybdenum cofactor coordinating the molybdenum at the active site. X-ray absorption spectroscopy indicates that the Mo-S bonds shorten from 2.47 to 2.37 A upon reduction with the physiological substrate. It also indicates the presence of an oxo ligand at 1.70 A in both oxidized and reduced forms of the enzyme, together with a short, 1.83 A, Mo-O bond in the oxidized form that is lost upon reduction. Resonance Raman spectroscopy indicates that the two pterin dithiolene moieties have different aromaticities, with one, the Q-pterin, having a more discrete dithiolate structure while the other, the P-pterin, has considerable pi-delocalization. Our results indicate that the structure of arsenite oxidase is intermediate between that seen in other molybdenum enzymes, in which one ligand to the metal is provided by the polypeptide (serine, cysteine, or selenocysteine), and tungsten enzymes that lack a peptide ligand.

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Year:  2002        PMID: 12236735     DOI: 10.1021/ja027684q

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  11 in total

1.  Molybdenum-containing arsenite oxidase of the chemolithoautotrophic arsenite oxidizer NT-26.

Authors:  Joanne M Santini; Rachel N vanden Hoven
Journal:  J Bacteriol       Date:  2004-03       Impact factor: 3.490

Review 2.  Genes and enzymes involved in bacterial oxidation and reduction of inorganic arsenic.

Authors:  Simon Silver; L T Phung
Journal:  Appl Environ Microbiol       Date:  2005-02       Impact factor: 4.792

Review 3.  The mononuclear molybdenum enzymes.

Authors:  Russ Hille; James Hall; Partha Basu
Journal:  Chem Rev       Date:  2014-01-28       Impact factor: 60.622

4.  Incorporation of molybdenum in rubredoxin: models for mononuclear molybdenum enzymes.

Authors:  Biplab K Maiti; Luisa B Maia; Célia M Silveira; Smilja Todorovic; Cintia Carreira; Marta S P Carepo; Raquel Grazina; Isabel Moura; Sofia R Pauleta; José J G Moura
Journal:  J Biol Inorg Chem       Date:  2015-05-07       Impact factor: 3.358

5.  Dioxomolybdenum(VI) complexes with ene-1,2-dithiolate ligands: synthesis, spectroscopy, and oxygen atom transfer reactivity.

Authors:  Hideki Sugimoto; Susumu Tatemoto; Koichiro Suyama; Hiroyuki Miyake; Shinobu Itoh; Chao Dong; Jing Yang; Martin L Kirk
Journal:  Inorg Chem       Date:  2009-11-16       Impact factor: 5.165

6.  Molybdenum and Tungsten Cofactors and the Reactions They Catalyze.

Authors:  Martin L Kirk; Khadanand Kc
Journal:  Met Ions Life Sci       Date:  2020-03-23

7.  Identification of Amino Acids at the Catalytic Site of a Ferredoxin-Dependent Cyanobacterial Nitrate Reductase.

Authors:  Anurag P Srivastava; James P Allen; Brian J Vaccaro; Masakazu Hirasawa; Suzanne Alkul; Michael K Johnson; David B Knaff
Journal:  Biochemistry       Date:  2015-09-04       Impact factor: 3.162

8.  Arsenite oxidizing multiple metal resistant bacteria isolated from industrial effluent: their potential use in wastewater treatment.

Authors:  Ayesha Naureen; Abdul Rehman
Journal:  World J Microbiol Biotechnol       Date:  2016-06-23       Impact factor: 3.312

9.  Investigation of the redox centres of periplasmic selenate reductase from Thauera selenatis by EPR spectroscopy.

Authors:  Elizabeth J Dridge; Carys A Watts; Brian J N Jepson; Kirsty Line; Joanne M Santini; David J Richardson; Clive S Butler
Journal:  Biochem J       Date:  2007-11-15       Impact factor: 3.857

10.  The active site structure and catalytic mechanism of arsenite oxidase.

Authors:  Thomas P Warelow; M Jake Pushie; Julien J H Cotelesage; Joanne M Santini; Graham N George
Journal:  Sci Rep       Date:  2017-05-11       Impact factor: 4.379

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