Mechanisms underlying dioxygen reduction in laccases. Structural and modelling studies focusing on proton transfer

Механизмы восстановления диоксида кислорода в лакказах: структурные и модельные исследования переноса протонов
Isabel Bento, Catarina S. Silva, Zhenjia Chen, Lı́gia O. Martins, Peter F. Lindley, Cláudio M. Soares
2010-01-01

CotA laccasedioxygen reductionlaccaseproton transfertrinuclear copper center
BACKGROUND: Laccases are enzymes that couple the oxidation of substrates with the reduction of dioxygen to water. They are the simplest members of the multi-copper oxidases and contain at least two types of copper centres; a mononuclear T1 and a trinuclear that includes two T3 and one T2 copper ions. Substrate oxidation takes place at the mononuclear centre whereas reduction of oxygen to water occurs at the trinuclear centre. RESULTS: In this study, the CotA laccase from Bacillus subtilis was used as a model to understand the mechanisms taking place at the molecular level, with a focus in the trinuclear centre. The structures of the holo-protein and of the oxidised form of the apo-protein, which has previously been reconstituted in vitro with Cu(I), have been determined. The former has a dioxygen moiety between the T3 coppers, while the latter has a monoatomic oxygen, here interpreted as a hydroxyl ion. The UV/visible spectra of these two forms have been analysed in the crystals and compared with the data obtained in solution. Theoretical calculations on these and other structures of CotA were used to identify groups that may be responsible for channelling the protons that are needed for reduction of dioxygen to water. CONCLUSIONS: These results present evidence that Glu 498 is the only proton-active group in the vicinity of the trinuclear centre. This strongly suggests that this residue may be responsible for channelling the protons needed for the reduction. These results are compared with other data available for these enzymes, highlighting similarities and differences within laccases and multicopper oxidases.
1
Comparisons with other laccases and multicopper oxidases revealed both conserved features and mechanistic differences.
2
Crystal UV/visible spectra of the two CotA forms were analyzed and compared with corresponding solution spectra.
3
Crystal structures of native and oxidized, copper-reconstituted CotA laccase revealed dioxygen between the T3 coppers in the holoenzyme and monoatomic oxygen interpreted as hydroxide in the apo-protein.
4
Glu498 is therefore strongly implicated as the residue that channels protons required for dioxygen reduction to water.
5
Structural analysis and theoretical calculations identified Glu498 as the only proton-active group near the trinuclear copper center.

CotA laccase from Bacillus subtilis, particularly its trinuclear copper centre and associated dioxygen/hydroxyl species

The molecular mechanism of dioxygen reduction to water, focusing on proton transfer and the role of Glu 498 near the trinuclear centre

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2010-01-01
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Isabel Bento
Catarina S. Silva
Zhenjia Chen
Lı́gia O. Martins
Peter F. Lindley
Cláudio M. Soares
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