Two-step concerted mechanism for methane hydroxylation on the diiron active site of soluble methane monooxygenase.
暂无分享,去创建一个
[1] Djamaladdin G. Musaev,et al. Mechanism of the methane → methanol conversion reaction catalyzed by methane monooxygenase: A density functional study , 1999 .
[2] K. Yoshizawa,et al. Intrinsic reaction coordinate analysis of the conversion of methane to methanol by an iron–oxo species: A study of crossing seams of potential energy surfaces , 1999 .
[3] K. Yoshizawa,et al. Inversion of Methane on Transition-Metal Complexes: A Possible Mechanism for Inversion of Stereochemistry , 1999 .
[4] Per E. M. Siegbahn,et al. Theoretical Model Studies of the Iron Dimer Complex of MMO and RNR. , 1999, Inorganic chemistry.
[5] J. Lipscomb,et al. Probing the mechanism of C-H activation: oxidation of methylcubane by soluble methane monooxygenase from Methylosinus trichosporium OB3b. , 1999, Biochemistry.
[6] S. Lippard,et al. Small Molecule Binding to the Mixed-Valent Diiron Center of Methane Monooxygenase Hydroxylase from Methylococcus capsulatus (Bath) as Revealed by ENDOR Spectroscopy , 1998 .
[7] K. Yoshizawa,et al. Methane Hydroxylation on a Diiron Model of Soluble Methane Monooxygenase , 1998 .
[8] S. Lippard,et al. Substrate binding and C-H bond activation in the soluble methane monooxygenase hydroxylase , 1998, JBIC Journal of Biological Inorganic Chemistry.
[9] H. Dalton,et al. Methane activation by methane monooxygenase: free radicals, Fe-C bonding, substrate dependent pathways and the role of the regulatory protein , 1998, JBIC Journal of Biological Inorganic Chemistry.
[10] Robert H. Crabtree,et al. Mechanism of methane monooxygenase – a structural and quantum chemical perspective , 1998, JBIC Journal of Biological Inorganic Chemistry.
[11] J. Lipscomb,et al. MMO: P450 in wolf's clothing? , 1998, JBIC Journal of Biological Inorganic Chemistry.
[12] A. A. Shteinman. Does the non-heme monooxygenase sMMO share a unified oxidation mechanism with the heme monooxygenase cytochrome P-450? , 1998, JBIC Journal of Biological Inorganic Chemistry.
[13] Kazunari Yoshizawa,et al. Two-step concerted mechanism for alkane hydroxylation on the ferryl active site of methane monooxygenase , 1998, JBIC Journal of Biological Inorganic Chemistry.
[14] K. Yoshizawa,et al. Abstraction of the Hydrogen Atom of Methane by Iron−Oxo Species: The Concerted Reaction Path Is Energetically More Favorable , 1998 .
[15] S. Shaik,et al. Theoretical Investigation of Two-State-Reactivity Pathways of H−H Activation by FeO+: Addition−Elimination, “Rebound”, and Oxene-Insertion Mechanisms , 1998 .
[16] Kazunari Yoshizawa,et al. Methane−Methanol Conversion by MnO+, FeO+, and CoO+: A Theoretical Study of Catalytic Selectivity , 1998 .
[17] E. Nordlander,et al. The mechanism of soluble methane monooxygenase , 1998, JBIC Journal of Biological Inorganic Chemistry.
[18] M. Newcomb,et al. A Substituted Hypersensitive Radical Probe for Enzyme-Catalyzed Hydroxylations: Synthesis of Racemic and Enantiomerically Enriched Forms and Application in a Cytochrome P450-Catalyzed Oxidation , 1997 .
[19] G. B. Shul’pin,et al. ACTIVATION OF C-H BONDS BY METAL COMPLEXES , 1997 .
[20] Kazunari Yoshizawa,et al. Dioxygen Cleavage and Methane Activation on Diiron Enzyme Models: A Theoretical Study , 1997 .
[21] K. Yoshizawa,et al. Reaction Paths for the Conversion of Methane to Methanol Catalyzed by FeO , 1997 .
[22] Robert H. Crabtree,et al. Mechanism of C−H Activation by Diiron Methane Monooxygenases: Quantum Chemical Studies , 1997 .
[23] N. Priestley,et al. Tritiated Chiral Alkanes as Substrates for Soluble Methane Monooxygenase from Methylococcus capsulatus (Bath): Probes for the Mechanism of Hydroxylation , 1997 .
[24] S. Shaik,et al. Spin−Orbit Coupling in the Oxidative Activation of H−H by FeO+. Selection Rules and Reactivity Effects , 1997 .
[25] V. Baranov,et al. Activation of hydrogen and methane by thermalized FeO+ in the gas phase as studied by multiple mass spectrometric techniques , 1997 .
[26] J D Lipscomb,et al. An Fe2IVO2 Diamond Core Structure for the Key Intermediate Q of Methane Monooxygenase , 1997, Science.
[27] R. Hoffmann,et al. POSSIBLE INTERMEDIATES FOR THE CONVERSION OF METHANE TO METHANOL ON DINUCLEAR IRON CENTERS OF METHANE MONOOXYGENASE MODELS , 1997 .
[28] R. Perutz,et al. Transition Metal Alkane Complexes , 1996 .
[29] John D. Lipscomb,et al. Dioxygen Activation by Enzymes Containing Binuclear Non-Heme Iron Clusters. , 1996, Chemical reviews.
[30] Philip E. Eaton,et al. REGIOCHEMICAL VARIATIONS IN REACTIONS OF METHYLCUBANE WITH TERT-BUTOXYL RADICAL, CYTOCHROME P-450 ENZYMES, AND A METHANE MONOOXYGENASE SYSTEM , 1996 .
[31] Lawrence Que,et al. Modeling the Oxygen Activation Chemistry of Methane Monooxygenase and Ribonucleotide Reductase , 1996 .
[32] M. Newcomb,et al. A nonsynchronous concerted mechanism for cytochrome P-450 catalyzed hydroxylation , 1995 .
[33] Helmut Schwarz,et al. CH and CC Bond Activation by Bare Transition‐Metal Oxide Cations in the Gas Phase , 1995 .
[34] Stephen J. Lippard,et al. Kinetic and spectroscopic characterization of intermediates and component interactions in reactions of methane monooxygenase from Methylococcus capsulatus (Bath) , 1995 .
[35] S. Shaik,et al. Two‐State Reactivity in Organometallic Gas‐Phase Ion Chemistry , 1995 .
[36] Robert H. Crabtree,et al. Aspects of Methane Chemistry , 1995 .
[37] W. E. Billups,et al. LOW-TEMPERATURE REACTIONS OF ATOMIC COBALT WITH CH2N2, CH4, CH3D, CH2D2, CHD3, CD4, H2, D2, AND HD , 1995 .
[38] A. Gräslund,et al. Diiron–Oxygen Proteins , 1995 .
[39] P. B. Armentrout,et al. Conversion of CH4 to CH3OH: Reactions of CoO+ with CH4 and D2, Co+ with CH3OD and D2O, and Co+(CH3OD) with Xe , 1994 .
[40] S. Lippard,et al. Determining the Structure of a Hydroxylase Enzyme That Catalyzes the Conversion of Methane to Methanol in Methanotrophic Bacteria , 1994 .
[41] Andrew L. Feig,et al. Reactions of Non-Heme Iron(II) Centers with Dioxygen in Biology and Chemistry , 1994 .
[42] J. Lipscomb. Biochemistry of the soluble methane monooxygenase. , 1994, Annual review of microbiology.
[43] J. Lipscomb,et al. Transient intermediates of the methane monooxygenase catalytic cycle. , 1993, The Journal of biological chemistry.
[44] B. Fox,et al. A Transient Intermediate of the Methane Monooxygenase Catalytic Cycle Containing an FeIVFeIV Cluster , 1993 .
[45] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[46] Stephen J. Lippard,et al. Radical clock substrate probes and kinetic isotope effect studies of the hydroxylation of hydrocarbons by methane monooxygenase , 1993 .
[47] N. Priestley,et al. Cryptic stereospecificity of methane monooxygenase , 1992 .
[48] Helmut Schwarz,et al. Experimental and theoretical studies toward a characterization of conceivable intermediates involved in the gas-phase oxidation of methane by bare FeO+. Generation of four distinguishable [Fe,C,H4,O]+ isomers , 1992 .
[49] H. Schwarz,et al. FeO⊕ Activates Methane , 1990 .
[50] Krishnan Raghavachari,et al. Highly correlated systems. Ionization energies of first row transition metals Sc–Zn , 1989 .
[51] C. Hill. Activation and functionalization of alkanes , 1989 .
[52] S. Lippard. Oxo‐Bridged Polyiron Centers in Biology and Chemistry , 1988 .
[53] Parr,et al. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. , 1988, Physical review. B, Condensed matter.
[54] Ortiz de Montellano,et al. Cytochrome P-450: Structure, Mechanism, and Biochemistry , 1986 .
[55] J. Groves. Key elements of the chemistry of cytochrome P-450: The oxygen rebound mechanism , 1985 .
[56] W. R. Wadt,et al. Ab initio effective core potentials for molecular calculations. Potentials for K to Au including the outermost core orbitals , 1985 .
[57] A. E. Shilov. Activation of Saturated Hydrocarbons by Transition Metal Complexes , 1984 .
[58] J. Pople,et al. Self‐consistent molecular orbital methods. XX. A basis set for correlated wave functions , 1980 .
[59] H. Dalton. Oxidation of Hydrocarbons by Methane Monooxygenases from a Variety of Microbes , 1980 .
[60] K. Fukui. Formulation of the reaction coordinate , 1970 .
[61] A. Wachters,et al. Gaussian Basis Set for Molecular Wavefunctions Containing Third‐Row Atoms , 1970 .