Chemistry and reactivity of dinuclear manganese oxamate complexes: Aerobic catechol oxidation catalyzed by high-valent bis(oxo)-bridged dimanganese(IV) complexes with a homologous series of binucleating 4,5-disubstituted-o-phenylenedioxamate ligands
暂无分享,去创建一个
F. Lloret | E. Pardo | J. Pedro | G. Blay | M. C. Muñoz | I. Fernández | Tomás Temporal-Sánchez | R. Ruiz-García | M. Muñoz | Rafael Ruiz-García
[1] Y. Hitomi,et al. Aerobic catechol oxidation catalyzed by a bis(mu-oxo)dimanganese(III,III) complex via a manganese(II)-semiquinonate complex. , 2005, Inorganic chemistry.
[2] A. Aukauloo,et al. From metal to ligand electroactivity in nickel(II) oxamato complexes. , 2004, Chemical communications.
[3] T. D. Stack,et al. Structure and spectroscopy of copper-dioxygen complexes. , 2004, Chemical reviews.
[4] S. Lippard,et al. Synthetic models for non-heme carboxylate-bridged diiron metalloproteins: strategies and tactics. , 2004, Chemical reviews.
[5] William B Tolman,et al. Reactivity of dioxygen-copper systems. , 2004, Chemical reviews.
[6] V. Pecoraro,et al. Structural, spectroscopic, and reactivity models for the manganese catalases. , 2004, Chemical reviews.
[7] M. Ali,et al. Kinetic studies on the oxidation of dihydroxybenzenes by monomeric manganese (III)- and bis(μ-oxo) manganese (III, IV)–cyclam complexes—phosphate inhibition , 2002 .
[8] S. Hamman,et al. Substrate binding in catechol oxidase activity: biomimetic approach. , 2002, Inorganic chemistry.
[9] W. Tolman,et al. Bis(μ‐oxo)dimetal “Diamond” Cores in Copper and Iron Complexes Relevant to Biocatalysis , 2002 .
[10] B. Krebs,et al. The crystal structure of catechol oxidase: new insight into the function of type-3 copper proteins. , 2002, Accounts of chemical research.
[11] A. Palmer,et al. Oxygen Binding, Activation, and Reduction to Water by Copper Proteins. , 2001, Angewandte Chemie.
[12] F. Lloret,et al. Alkane oxidation by a carboxylate-bridged dimanganese(III) complex. , 2001, Chemical communications.
[13] Maarten Merkx,et al. Dioxygen Activation and Methane Hydroxylation by Soluble Methane Monooxygenase: A Tale of Two Irons and Three Proteins. , 2001, Angewandte Chemie.
[14] P. Comba,et al. Structural studies on dicopper(II) compounds with catechol oxidase activity , 2001 .
[15] V. Pecoraro,et al. A magneto-structural correlation between the Heisenberg constant, J, and the MnOMn angle in [MnIV(μ-O)]2 dimers , 2000 .
[16] K. Hodgson,et al. Exogenous Substrate Reactivity with a [Cu(III)2O2]2+ Core: Structural Implications , 1999 .
[17] W. Tolman,et al. Reactivity of Peroxo‐ and Bis(μ‐oxo)dicopper Complexes with Catechols , 1999 .
[18] F. Lloret,et al. Stabilization of copper(III) complexes by substituted oxamate ligands , 1998 .
[19] A. Aukauloo,et al. Manganese(IV) oxamato-catalyzed oxidation of secondary alcohols to ketones by dioxygen and pivalaldehyde , 1998 .
[20] W. Tolman. MAKING AND BREAKING THE DIOXYGEN 0-0 BOND : NEW INSIGHTS FROM STUDIES OF SYNTHETIC COPPER COMPLEXES , 1997 .
[21] B. Sjöberg. Ribonucleotide reductases — a group of enzymes with different metallosites and a similar reaction mechanism , 1997 .
[22] A. Aukauloo,et al. Iron(III) oxamato-catalyzed epoxidation of alkenes by dioxygen and pivalaldehyde , 1997 .
[23] G. Charles Dismukes,et al. Manganese Enzymes with Binuclear Active Sites. , 1996, Chemical reviews.
[24] E. Solomon,et al. Multicopper Oxidases and Oxygenases. , 1996, Chemical reviews.
[25] John D. Lipscomb,et al. Dioxygen Activation by Enzymes Containing Binuclear Non-Heme Iron Clusters. , 1996, Chemical reviews.
[26] Olivier Kahn,et al. New Metal Oxamates as Precursors of Low-Dimensional Heterobimetallics. , 1996, Inorganic chemistry.
[27] Lawrence Que,et al. Modeling the Oxygen Activation Chemistry of Methane Monooxygenase and Ribonucleotide Reductase , 1996 .
[28] V. Pecoraro,et al. Interaction of Manganese with Dioxygen and Its Reduced Derivatives , 1994 .
[29] G. Christou,et al. Higher Oxidation State Manganese Biomolecules , 1990 .
[30] K. Karlin,et al. Catecholate coordination to copper: structural characterization of a tetrachloro-o-catecholate-bridged dicopper(II) complex as a model for intermediates in copper-catalyzed oxidation of catechols , 1985 .