Structural insights into the O2reduction mechanism of multicopper oxidase

Структурные аспекты механизма восстановления O2 мультикупровыми оксидазами
Hirofumi Komori, Yoshiki Higuchi
2015-08-12

O2 reductionX-ray crystallographycatalytic active sitemulticopper oxidasestrinuclear copper centre
Multicopper oxidases are ubiquitous enzymes that catalyse the oxidation of various substrates via the reduction of O2 to H2O. The enzymes contain a common active centre consisting of four copper ions. The key component for O2 reduction is the trinuclear copper centre comprising one type II and a pair of type III copper ions. Although the crystal structures of many multicopper oxidases have been determined by X-ray crystallography, the geometric parameters in the trinuclear copper centre are different for each study. Recent studies have revealed that the redox state of copper ions is altered by X-ray irradiation. The reported crystal structures may represent mixtures of different stages of the catalytic reactions. In this review, we discuss recent findings related to the structure of the active site in multicopper oxidases.
1
Multicopper oxidases catalyze substrate oxidation by reducing molecular oxygen to water at a four-copper active center.
2
Recent structural findings revise understanding of the active-site configuration and oxygen-reduction mechanism in multicopper oxidases.
3
Reported trinuclear copper-center geometries vary among crystal structures of multicopper oxidases.
4
The trinuclear copper center, containing one type II and two type III copper ions, is the key component for oxygen reduction.
5
X-ray irradiation can alter copper redox states, so crystallographic structures may represent mixtures of different catalytic reaction stages.

multicopper oxidases, particularly their trinuclear copper active centre

the structural features and O2-reduction mechanism of the trinuclear copper centre, including catalytic-state-dependent geometry and redox-state changes induced by X-ray irradiation

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2015-08-12
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Hirofumi Komori
Yoshiki Higuchi
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