The nature of the phosphate inhibitor complex of sulphite oxidase from electron-paramagnetic-resonance studies using oxygen-17 (original) (raw)

The nature of the phosphate complex of sulphite oxidase from electron-paramagnetic-resonance studies

ROGER PRINCE

The Biochemical journal, 1988

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Evidence from electron-paramagnetic-resonance spectroscopy for a complex of sulphite ions with the molybdenum centre of sulphite oxidase

Steven Gutteridge

The Biochemical journal, 1982

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Mo V Electron Paramagnetic Resonance of Sulfite Oxidase Revisited: The Low-pH Chloride Signal

ROGER PRINCE

Inorganic Chemistry, 2008

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MoV Electron Paramagnetic Resonance of Sulfite Oxidase Revisited: The Low-pH Chloride Signal

ROGER PRINCE

Inorganic Chemistry, 2008

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Structure of the active site of sulfite oxidase. X-ray absorption spectroscopy of the Mo(IV), Mo(V), and Mo(VI) oxidation states

ROGER PRINCE

Biochemistry Usa, 1989

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Structure of the active site of sulfite oxidase. X-ray absorption spectroscopy of the molybdenum(IV), molybdenum(V), and molybdenum(VI) oxidation states

Roger Prince

Biochemistry, 1989

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Synthesis of the active sites of molybdoenzymes: MoO2(Vl ) and MoO(IV)-dithiolene complexes mimicking enzymatic reactions of sulphite oxidase with saturation kinetics

Sabyasachi Sarkar

Journal of Chemical Sciences, 1992

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Synthesis of the active sites of molybdoenzymes: MoO 2 (VI) and MoO(IV)-dithiolene complexes mimicking enzymatic reactions of sulphite oxidase with saturation kinetics

Sabyasachi Sarkar

1992

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Synthesis of the Active Sites of Molybdoenzymes: MoO 2 (VI) and MoO (IV)-Dithiolene Complexes Mimicking Enzymatic Reactions of Sulphite Oxidase With Saturation …

Sabyasachi Sarkar

Journal of Chemical Sciences, 1992

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Coordination Chemistry at the Molybdenum Site of Sulfite Oxidase: Redox-Induced Structural Changes in the Cysteine 207 to Serine Mutant

ROGER PRINCE

Inorganic Chemistry, 2004

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A quantum-mechanical study of the reaction mechanism of sulfite oxidase

Marie-Céline Van Severen

JBIC Journal of Biological Inorganic Chemistry, 2014

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Electron paramagnetic resonance studies on the high-salt form of bovine spleen purple acid phosphatase

Bruce Averill

Biochemistry, 1992

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Direct Detection and Characterization of Chloride in the Active Site of the Low-pH Form of Sulfite Oxidase Using Electron Spin Echo Envelope Modulation Spectroscopy, Isotopic Labeling, and Density Functional Theory Calculations

Frank Neese

Inorganic Chemistry, 2009

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Pulsed EPR Studies of a Bacterial Sulfite-Oxidizing Enzyme with pH-Invariant Hyperfine Interactions from Exchangeable Protons

Ulrike Kappler

Inorganic Chemistry, 2005

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Modeling for the Active Site of Sulfite Oxidase: Synthesis, Characterization, and Reactivity of [MoVIO2(mnt)2]2- (mnt2- = 1,2-Dicyanoethylenedithiolate

Sabyasachi Sarkar

Journal of The American Chemical Society, 1994

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The structures of the C185S and C185A mutants of sulfite oxidase reveal rearrangement of the active site

M Jake Pushie

Biochemistry, 2010

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31P NMR and chemical studies on the phosphorus residues in milk xanthine oxidase

Franz Mueller

Flavins and Flavoproteins

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Role of Conserved Tyrosine 343 in Intramolecular Electron Transfer in Human Sulfite Oxidase

John Hurley

Journal of Biological Chemistry, 2003

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Molecular Basis of Sulfite Oxidase Deficiency from the Structure of Sulfite Oxidase

Caroline Kisker

Cell, 1997

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Mechanism of enantioselective oxygenation of sulfides catalyzed by chloroperoxidase and horseradish peroxidase. Spectral studies and characterization of enzyme-substrate complexes

Stefano Colonna

Biochemistry, 1992

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31P NMR of phosphate and phosphonate complexes of metalloalkaline phosphatases

Ian Armitage

Journal of Biological Chemistry, 1976

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Inhibition patterns of a model complex mimicking the reductive half-reaction of sulphite oxidase

Sabyasachi Sarkar

The Biochemical journal, 1996

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31P NMR of alkaline phosphatase. Saturation transfer and metal-phosphorus coupling

Ian Armitage

Journal of Biological Chemistry, 1979

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Electron-nuclear double resonance studies of oxidized Escherichia coli sulfite reductase: proton, nitrogen-14 and iron-57 measurements

Lewis Siegel

Biochemistry, 1985

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Structure of the Michaelis Complex and Function of the Catalytic Center in the Reductive Half-Reaction of Computational and Synthetic Models of Sulfite Oxidase

Sabyasachi Sarkar

Chemistry – An Asian Journal, 2007

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Allosteric interactions between metal ion and phosphate at the active sites of alkaline phosphatase as determined by 31P NMR and 113Cd NMR

Ian Armitage

Journal of Biological Chemistry, 1977

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Modulation of cytochrome oxidase activity by inorganic and organic phosphate

Paolo Sarti

The Biochemical journal, 1987

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Modified Active Site Coordination in a Clinical Mutant of Sulfite Oxidase

ROGER PRINCE

Journal of the American Chemical Society, 2008

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Spectral and kinetic studies of phosphate and magnesium ion binding to yeast inorganic pyrophosphatase

Alexander Baykov

European Journal of Biochemistry, 1989

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O-S Bond Activation in Structures Isoelectronic with Ferric Peroxide Species Known in O-O-Activating Enzymes: Relevance for Sulfide Activation and Sulfite Reductases

Radu Silaghi-Dumitrescu

European Journal of Inorganic Chemistry, 2014

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Optimization of Expression of Human Sulfite Oxidase and Its Molybdenum Domain

Tyler Graf

Archives of Biochemistry and Biophysics, 2000

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31P NMR of alkaline phosphatase. Dependence of phosphate binding stoichiometry on metal ion content

Ian Armitage

Journal of Biological Chemistry

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Structures of the Siroheme- and Fe4S4-Containing Active Center of Sulfite Reductase in Different States of Oxidation: Heme Activation via Reduction-Gated Exogenous Ligand Exchange

Lewis Siegel

Biochemistry, 1997

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Structural and Spectroscopic Studies Shed Light on the Mechanism of Oxalate Oxidase

Ruth Rose

Journal of Biological Chemistry, 2005

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X-ray Absorption Spectroscopy of Selenate Reductase

Joanne Santini

Inorganic Chemistry, 2004

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