Inner-Sphere Mechanism for Molecular Oxygen Reduction Catalyzed by Copper Amine Oxidases
Внутрисферный механизм восстановления молекулярного кислорода, катализируемого медьсодержащими аминооксидазами
2008-06-27
SCID: 54.1/msm6vdms
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Copper amine oxidasesDensity functional methodsInner-sphere mechanismMolecular oxygen reductionOxygen kinetic isotope effects
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Abstract (AI)
Copper and topaquinone (TPQ) containing amine oxidases utilize O2 for the metabolism of biogenic amines while concomitantly generating H2O2 for use by the cell. The mechanism of O2 reduction has been the subject of long-standing debate due to the obscuring influence of a proton-coupled electron transfer between the tyrosine-derived TPQ and copper, a rapidly established equilibrium precluding assignment of the enzyme in its reactive form. Here, we show that substrate-reduced pea seedling amine oxidase (PSAO) exists predominantly in the Cu(I), TPQ semiquinone state. A new mechanistic proposal for O2 reduction is advanced on the basis of thermodynamic considerations together with kinetic studies (at varying pH, temperature, and viscosity), the identification of steady-state intermediates, and the analysis of competitive oxygen kinetic isotope effects, (18)O KIEs, [kcat/KM((16,16)O2)]/[kcat/KM((16,18)O2)]. The (18)O KIE = 1.0136 +/- 0.0013 at pH 7.2 is independent of temperature from 5 degrees C to 47 degrees C and insignificantly changed to 1.0122 +/- 0.0020 upon raising the pH to 9, thus indicating the absence of kinetic complexity. Using density functional methods, the effect is found to be precisely in the range expected for reversible O2 binding to Cu(I) to afford a superoxide, [Cu(II)(eta(1)-O2)(-I)](+), intermediate. Electron transfer from the TPQ semiquinone follows in the first irreversible step to form a peroxide, Cu(II)(eta(1)-O2)(-II), intermediate driving the reduction of O2. The similar (18)O KIEs reported for copper amine oxidases from other sources raise the possibility that all enzymes react by related inner-sphere mechanisms although additional experiments are needed to test this proposal.
Key Findings
1
A consistent oxygen kinetic isotope effect of 1.0136 ± 0.0013 at pH 7.2 was independent of temperature and largely unchanged at pH 9, indicating minimal kinetic complexity.
2
Electron transfer from TPQ semiquinone is proposed as the first irreversible step, producing a Cu(II)-peroxide intermediate and driving O2 reduction.
3
Similar isotope effects in other copper amine oxidases suggest a potentially conserved inner-sphere mechanism, although further experiments are required.
4
Substrate-reduced pea seedling amine oxidase predominantly exists in the Cu(I), TPQ semiquinone state.
5
The isotope effect matches reversible inner-sphere O2 binding to Cu(I), forming a Cu(II)-superoxide intermediate.
Research Object
substrate-reduced pea seedling amine oxidase (PSAO) containing Cu(I) and TPQ semiquinone
Research Subject
the inner-sphere mechanism and intermediates of molecular oxygen reduction, including reversible O2 binding to Cu(I) and subsequent electron transfer from TPQ semiquinone
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2008-06-27
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