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High-valent Copper in Biomimetic and Biological Oxidations

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Publisher Springer
Specialty Biochemistry
Date 2016 Dec 3
PMID 27909921
Citations 24
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Abstract

A long-standing debate in the Cu-O field has revolved around the relevance of the Cu(III) oxidation state in biological redox processes. The proposal of Cu(III) in biology is generally challenged as no spectroscopic or structural evidence exists currently for its presence. The reaction of synthetic Cu(I) complexes with O at low temperature in aprotic solvents provides the opportunity to investigate and define the chemical landscape of Cu-O species at a small-molecule level of detail; eight different types are characterized structurally, three of which contain at least one Cu(III) center. Simple imidazole or histamine ligands are competent in these oxygenation reactions to form Cu(III) complexes. The combination of synthetic structural and reactivity data suggests (1) that Cu(I) should be considered as either a one or two electron reductant reacting with O, (2) that Cu(III) reduction potentials of these formed complexes are modest and well within the limits of a protein matrix and (3) that primary amine and imidazole ligands are surprisingly good at stabilizing Cu(III) centers. These Cu(III) complexes are efficient oxidants for hydroxylating phenolate substrates with reaction hallmarks similar to that performed in biological systems. The remarkable ligation similarity of the synthetic and biological systems makes it difficult to continue to exclude Cu(III) from biological discussions.

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References
1.
Aboelella N, Kryatov S, Gherman B, Brennessel W, Young Jr V, Sarangi R . Dioxygen activation at a single copper site: structure, bonding, and mechanism of formation of 1:1 Cu-O2 adducts. J Am Chem Soc. 2004; 126(51):16896-911. DOI: 10.1021/ja045678j. View

2.
Solomon E, Heppner D, Johnston E, Ginsbach J, Cirera J, Qayyum M . Copper active sites in biology. Chem Rev. 2014; 114(7):3659-853. PMC: 4040215. DOI: 10.1021/cr400327t. View

3.
Bossu F, Chellappa K, Margerum D . Ligand effects on the thermodynamic stabilization of copper(III)-peptide complexes. J Am Chem Soc. 1977; 99(7):2195-2203. DOI: 10.1021/ja00449a028. View

4.
Xu B, Lumb J, Arndtsen B . A TEMPO-free copper-catalyzed aerobic oxidation of alcohols. Angew Chem Int Ed Engl. 2015; 54(14):4208-11. DOI: 10.1002/anie.201411483. View

5.
Prigge S, Eipper B, Mains R, Amzel L . Dioxygen binds end-on to mononuclear copper in a precatalytic enzyme complex. Science. 2004; 304(5672):864-7. DOI: 10.1126/science.1094583. View