Oxygen Binding, Activation, and Reduction to Water by Copper Proteins
Связывание, активация и восстановление кислорода до воды медьсодержащими белками
2001-12-17
SCID: 54.1/h5avm2rt
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O–O bond cleavagecopper proteinsdioxygen activationmulticopper oxidasesoxygen intermediates
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Abstract (AI)
Copper active sites play a major role in biological and abiological dioxygen activation. Oxygen intermediates have been studied in detail for the proteins and enzymes involved in reversible O(2) binding (hemocyanin), activation (tyrosinase), and four-electron reduction to water (multicopper oxidases). These oxygen intermediates exhibit unique spectroscopic features indicative of new geometric and electronic structures involved in oxygen activation. The spectroscopic and quantum-mechanical study of these intermediates has defined geometric- and electronic-structure/function correlations, and developed detailed reaction coordinates for the reversible binding of O(2), hydroxylation, and H-atom abstraction from different substrates, and the reductive cleavage of the O-O bond in the formation water.
Key Findings
1
Combined spectroscopic and quantum-mechanical studies established correlations between copper-site geometry, electronic structure, and oxygen-related function.
2
Copper active sites mediate key biological and abiological dioxygen processes, including reversible O₂ binding, oxygen activation, and four-electron reduction to water.
3
Detailed reaction coordinates were defined for reversible O₂ binding, substrate hydroxylation, hydrogen-atom abstraction, and reductive O–O bond cleavage during water formation.
4
Hemocyanin, tyrosinase, and multicopper oxidases contain oxygen intermediates with distinctive spectroscopic signatures reflecting unusual geometric and electronic structures.
Research Object
Copper proteins and enzymes with copper active sites involved in dioxygen binding, activation, and four-electron reduction to water
Research Subject
The geometric and electronic structures, spectroscopic signatures, and reaction mechanisms of oxygen intermediates underlying reversible O2 binding, substrate hydroxylation and H-atom abstraction, and reductive O–O bond cleavage to form water
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2001-12-17
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