4.8 Article

Nature of the intermediate formed in the reduction of O2 to H2O at the trinuclear copper cluster active site in native laccase

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 124, Issue 21, Pages 6180-6193

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ja0114052

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Funding

  1. NCRR NIH HHS [RR-01209] Funding Source: Medline
  2. NIDDK NIH HHS [DK31450] Funding Source: Medline

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The multicopper oxidases contain at least four copper atoms and catalyze the four-electron reduction of O-2 to H2O at a trinuclear copper cluster. An intermediate, termed native intermediate, has been trapped by a rapid freeze-quench technique from Rhus vernicifera laccase when the fully reduced form reacts with dioxygen. This intermediate had been described as an oxygen-radical bound to the trinuclear copper cluster with one Cu site reduced, XAS, however, shows that all copper atoms are oxidized in this intermediate. A combination of EXAFS, multifrequency EPR, and VTVH MCD has been used to understand how this fully oxidized trinuclear Cu cluster relates to the fully oxidized resting form of the enzyme. It is determined that in the native intermediate all copper atoms of the cluster are bridged by the product of full 02 reduction. In contrast, the resting form has one copper atom of the cluster (the T2 Cu) magnetically isolated from the others. The native intermediate decays to the resting oxidized form with a rate that is too slow to be in the catalytic cycle. Thus, the native intermediate appears to be the catalytically relevant fully oxidized form of the enzyme, and its role in catalysis is considered.

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