Oxygen Activation and Radical Transformations in Heme Proteins and Metalloporphyrins

As a result of the adaptation of life to an aerobic environment, nature has evolved a panoply of metalloproteins for oxidative metabolism and protection against reactive oxygen species. Despite the diverse structures and functions of these proteins, they share common mechanistic grounds. An open-shell transition metal like iron or copper is employed to interact with O2 and its derived intermediates such as hydrogen peroxide to afford a variety of metal–oxygen intermediates. These reactive intermediates, including metal-superoxo, -(hydro)peroxo, and high-valent metal–oxo species, are the basis for the various biological functions of O2-utilizing metalloproteins. Collectively, these processes are called oxygen activation. Much of our understanding of the reactivity of these reactive intermediates has come from the study of heme-containing proteins and related metalloporphyrin compounds. These studies not only have deepened our understanding of various functions of heme proteins, such as O2 storage and transport, degradation of reactive oxygen species, redox signaling, and biological oxygenation, etc., but also have driven the development of bioinorganic chemistry and biomimetic catalysis. In this review, we survey the range of O2 activation processes mediated by heme proteins and model compounds with a focus on recent progress in the characterization and reactivity of important iron–oxygen intermediates. Representative reactions initiated by these reactive intermediates as well as some context from prior decades will also be presented. We will discuss the fundamental mechanistic features of these transformations and delineate the underlying structural and electronic factors that contribute to the spectrum of reactivities that has been observed in nature as well as those that have been invented using these paradigms. Given the recent developments in biocatalysis for non-natural chemistries and the renaissance of radical chemistry in organic synthesis, we envision that new enzymatic and synthetic transformations will emerge based on the radical processes mediated by metalloproteins and their synthetic analogs.

[1]  J. Groves,et al.  Alkyl Isocyanates via Manganese-Catalyzed C-H Activation for the Preparation of Substituted Ureas. , 2017, Journal of the American Chemical Society.

[2]  Frances H. Arnold,et al.  Anti-Markovnikov alkene oxidation by metal-oxo–mediated enzyme catalysis , 2017, Science.

[3]  S. Hofbauer,et al.  Molecular Mechanism of Enzymatic Chlorite Detoxification: Insights from Structural and Kinetic Studies , 2017, ACS catalysis.

[4]  Regina A Baglia,et al.  Biomimetic Reactivity of Oxygen-Derived Manganese and Iron Porphyrinoid Complexes. , 2017, Chemical reviews.

[5]  Michael T. Green,et al.  Direct Observation of Oxygen Rebound with an Iron-Hydroxide Complex. , 2017, Journal of the American Chemical Society.

[6]  Michael T. Green,et al.  Characterization of a selenocysteine-ligated P450 compound I reveals direct link between electron donation and reactivity. , 2017, Nature chemistry.

[7]  J. Groves,et al.  The Enigmatic P450 Decarboxylase OleT Is Capable of, but Evolved To Frustrate, Oxygen Rebound Chemistry. , 2017, Biochemistry.

[8]  W. Goddard,et al.  Probing the C–O Bond-Formation Step in Metalloporphyrin-Catalyzed C–H Oxygenation Reactions , 2017 .

[9]  C. E. Wise,et al.  Divergent mechanisms of iron-containing enzymes for hydrocarbon biosynthesis , 2016, JBIC Journal of Biological Inorganic Chemistry.

[10]  S. Fukuzumi,et al.  Tunneling Effect That Changes the Reaction Pathway from Epoxidation to Hydroxylation in the Oxidation of Cyclohexene by a Compound I Model of Cytochrome P450. , 2017, The journal of physical chemistry letters.

[11]  F. Qi,et al.  Mutagenesis and redox partners analysis of the P450 fatty acid decarboxylase OleTJE , 2017, Scientific Reports.

[12]  J. Groves,et al.  Fast Hydrogen Atom Abstraction by a Hydroxo Iron(III) Porphyrazine. , 2017, Journal of the American Chemical Society.

[13]  Yi Lu,et al.  Why copper is preferred over iron for oxygen activation and reduction in haem-copper oxidases. , 2017, Nature chemistry.

[14]  Rui Cao,et al.  Energy-Related Small Molecule Activation Reactions: Oxygen Reduction and Hydrogen and Oxygen Evolution Reactions Catalyzed by Porphyrin- and Corrole-Based Systems. , 2017, Chemical reviews.

[15]  Takashi Kameshima,et al.  Light-induced structural changes and the site of O=O bond formation in PSII caught by XFEL , 2017, Nature.

[16]  S. Fukuzumi,et al.  High-valent metal-oxo complexes generated in catalytic oxidation reactions using water as an oxygen source , 2017 .

[17]  E. Solomon,et al.  Frontier Molecular Orbital Contributions to Chlorination versus Hydroxylation Selectivity in the Non-Heme Iron Halogenase SyrB2. , 2017, Journal of the American Chemical Society.

[18]  J. W. Peters,et al.  A Structure‐Based Mechanism for Oxidative Decarboxylation Reactions Mediated by Amino Acids and Heme Propionates , 2017, The FASEB Journal.

[19]  W. Tolman,et al.  Copper-Oxygen Complexes Revisited: Structures, Spectroscopy, and Reactivity. , 2017, Chemical reviews.

[20]  V. Batista,et al.  The O2-Evolving Complex of Photosystem II: Recent Insights from Quantum Mechanics/Molecular Mechanics (QM/MM), Extended X-ray Absorption Fine Structure (EXAFS), and Femtosecond X-ray Crystallography Data. , 2017, Accounts of chemical research.

[21]  Michael T. Green,et al.  A new look at the role of thiolate ligation in cytochrome P450 , 2017, JBIC Journal of Biological Inorganic Chemistry.

[22]  K. Karlin,et al.  Critical Aspects of Heme-Peroxo-Cu Complex Structure and Nature of Proton Source Dictate Metal-O(peroxo) Breakage versus Reductive O-O Cleavage Chemistry. , 2017, Journal of the American Chemical Society.

[23]  Arianna I. Celis,et al.  Reactions of Ferrous Coproheme Decarboxylase (HemQ) with O2 and H2O2 Yield Ferric Heme b. , 2017, Biochemistry.

[24]  M. Crestoni,et al.  A Systematic Account on Aromatic Hydroxylation by a Cytochrome P450 Model Compound I: A Low-Pressure Mass Spectrometry and Computational Study. , 2016, Chemistry.

[25]  J. Groves,et al.  Beyond ferryl-mediated hydroxylation: 40 years of the rebound mechanism and C–H activation , 2016, JBIC Journal of Biological Inorganic Chemistry.

[26]  Michael Lee,et al.  Analysis of Reaction Intermediates in Tryptophan 2,3-Dioxygenase: A Comparison with Indoleamine 2,3-Dioxygenase. , 2016, Biochemistry.

[27]  Michael T. Green,et al.  Spectroscopic Investigations of Catalase Compound II: Characterization of an Iron(IV) Hydroxide Intermediate in a Non-thiolate-Ligated Heme Enzyme. , 2016, Journal of the American Chemical Society.

[28]  P. Moody,et al.  Direct visualization of a Fe(IV)–OH intermediate in a heme enzyme , 2016, Nature Communications.

[29]  C. Herrero,et al.  Characterization and Subsequent Reactivity of an Fe-Peroxo Porphyrin Generated by Electrochemical Reductive Activation of O2. , 2016, Inorganic chemistry.

[30]  A. Brash,et al.  The Thr–His Connection on the Distal Heme of Catalase‐Related Hemoproteins: A Hallmark of Reaction with Fatty Acid Hydroperoxides , 2016, Chembiochem : a European journal of chemical biology.

[31]  Michael T. Green,et al.  Preparation of Compound I in P450cam: The Prototypical P450 , 2016 .

[32]  D. Cane,et al.  The Cytochrome P450-Catalyzed Oxidative Rearrangement in the Final Step of Pentalenolactone Biosynthesis: Substrate Structure Determines Mechanism. , 2016, Journal of the American Chemical Society.

[33]  P. Baran,et al.  Radicals: Reactive Intermediates with Translational Potential , 2016, Journal of the American Chemical Society.

[34]  S. D. de Visser,et al.  Singlet versus Triplet Reactivity in an Mn(V)-Oxo Species: Testing Theoretical Predictions Against Experimental Evidence. , 2016, Journal of the American Chemical Society.

[35]  Angela Lombardi,et al.  Design and engineering of artificial oxygen-activating metalloenzymes. , 2016, Chemical Society reviews.

[36]  Sumit Sahu,et al.  Activation of Dioxygen by Iron and Manganese Complexes: A Heme and Nonheme Perspective. , 2016, Journal of the American Chemical Society.

[37]  T. Makris,et al.  Catalytic strategy for carbon−carbon bond scission by the cytochrome P450 OleT , 2016, Proceedings of the National Academy of Sciences.

[38]  T. Makris,et al.  Expanding the substrate scope and reactivity of cytochrome P450 OleT. , 2016, Biochemical and biophysical research communications.

[39]  Martin Egli,et al.  Recent Structural Insights into Cytochrome P450 Function. , 2016, Trends in pharmacological sciences.

[40]  Vivek Sharma,et al.  The role of the K-channel and the active-site tyrosine in the catalytic mechanism of cytochrome c oxidase. , 2016, Biochimica et biophysica acta.

[41]  H. Sugimoto,et al.  A substrate-binding-state mimic of H2O2-dependent cytochrome P450 produced by one-point mutagenesis and peroxygenation of non-native substrates , 2016 .

[42]  M. L. Hillwig,et al.  Structural basis for halogenation by iron- and 2-oxo-glutarate-dependent enzyme WelO5 , 2016, Nature chemical biology.

[43]  H. Fujii,et al.  Participation of Electron Transfer Process in Rate-Limiting Step of Aromatic Hydroxylation Reactions by Compound I Models of Heme Enzymes. , 2016, Journal of the American Chemical Society.

[44]  M. Reetz,et al.  Exploring substrate scope and stereoselectivity of P450 peroxygenase OleTJE in olefin-forming oxidative decarboxylation. , 2016, Chemical communications.

[45]  Y. Naruta,et al.  The secondary coordination sphere controlled reactivity of a ferric-superoxo heme: unexpected conversion to a ferric hydroperoxo intermediate by reaction with a high-spin ferrous heme. , 2016, Chemical communications.

[46]  A. Mulholland,et al.  Quantum Mechanics/Molecular Mechanics Modeling of Drug Metabolism: Mexiletine N-Hydroxylation by Cytochrome P450 1A2. , 2016, Chemical research in toxicology.

[47]  M. L. Hillwig,et al.  Discovery of a Promiscuous Non-Heme Iron Halogenase in Ambiguine Alkaloid Biogenesis: Implication for an Evolvable Enzyme Family for Late-Stage Halogenation of Aliphatic Carbons in Small Molecules. , 2016, Angewandte Chemie.

[48]  Kevin M. Johnson,et al.  Human cytochrome P450 27C1 catalyzes 3,4‐desaturation of retinoids , 2016, FEBS letters.

[49]  J. Kästner,et al.  Atom Tunneling in Chemistry. , 2016, Angewandte Chemie.

[50]  Sason Shaik,et al.  Emergence of Function in P450-Proteins: A Combined Quantum Mechanical/Molecular Mechanical and Molecular Dynamics Study of the Reactive Species in the H2O2-Dependent Cytochrome P450SPα and Its Regio- and Enantioselective Hydroxylation of Fatty Acids. , 2016, Journal of the American Chemical Society.

[51]  C. Malliakas,et al.  CO Binding at a Four-Coordinate Cobaltous Porphyrin Site in a Metal-Organic Framework: Structural, EPR, and Gas Adsorption Analysis. , 2016, Inorganic chemistry.

[52]  P. Afanasiev,et al.  μ-Nitrido Diiron Macrocyclic Platform: Particular Structure for Particular Catalysis. , 2016, Accounts of chemical research.

[53]  Matthew G. Quesne,et al.  Origin of the Enhanced Reactivity of μ-Nitrido-Bridged Diiron(IV)-Oxo Porphyrinoid Complexes over Cytochrome P450 Compound I , 2016 .

[54]  S. Shaik,et al.  To rebound or dissociate? This is the mechanistic question in C-H hydroxylation by heme and nonheme metal-oxo complexes. , 2016, Chemical Society reviews.

[55]  S. Shaik,et al.  Interplay of Tunneling, Two-State Reactivity, and Bell-Evans-Polanyi Effects in C-H Activation by Nonheme Fe(IV)O Oxidants. , 2016, Journal of the American Chemical Society.

[56]  A. Dey,et al.  Catalytic H2O2 Disproportionation and Electrocatalytic O2 Reduction by a Functional Mimic of Heme Catalase: Direct Observation of Compound 0 and Compound I in Situ , 2016 .

[57]  A. Studer,et al.  Catalysis of Radical Reactions: A Radical Chemistry Perspective. , 2016, Angewandte Chemie.

[58]  Matthew O. Ross,et al.  Spectroscopic and Crystallographic Evidence for the Role of a Water-Containing H-Bond Network in Oxidase Activity of an Engineered Myoglobin , 2015, Journal of the American Chemical Society.

[59]  J. Rencoret,et al.  Demonstration of Lignin-to-Peroxidase Direct Electron Transfer , 2015, The Journal of Biological Chemistry.

[60]  M. Salamone,et al.  Tuning reactivity and selectivity in hydrogen atom transfer from aliphatic C-H bonds to alkoxyl radicals: role of structural and medium effects. , 2015, Accounts of chemical research.

[61]  Frances H Arnold,et al.  Chemomimetic biocatalysis: exploiting the synthetic potential of cofactor-dependent enzymes to create new catalysts. , 2015, Journal of the American Chemical Society.

[62]  Michael Lee,et al.  Substrate Oxidation by Indoleamine 2,3-Dioxygenase , 2015, The Journal of Biological Chemistry.

[63]  H. Gray,et al.  Discovery of the magnetic behavior of hemoglobin: A beginning of bioinorganic chemistry , 2015, Proceedings of the National Academy of Sciences.

[64]  J. Savéant,et al.  Molecular Catalysis of O2 Reduction by Iron Porphyrins in Water: Heterogeneous versus Homogeneous Pathways. , 2015, Journal of the American Chemical Society.

[65]  Yi Lu,et al.  A biosynthetic model of cytochrome c oxidase as an electrocatalyst for oxygen reduction , 2015, Nature Communications.

[66]  S. Marque,et al.  Energetics of the biosynthesis of prostanes from arachidonate , 2015 .

[67]  Valentin N. Parmon,et al.  The Brønsted−Evans−Polanyi Correlations in Oxidation Catalysis , 2015 .

[68]  K. Karlin,et al.  Synthetic heme/copper assemblies: toward an understanding of cytochrome c oxidase interactions with dioxygen and nitrogen oxides. , 2015, Accounts of chemical research.

[69]  Michael T. Green,et al.  Significantly shorter Fe-S bond in cytochrome P450-I is consistent with greater reactivity relative to chloroperoxidase , 2015, Nature chemistry.

[70]  H. Gray,et al.  Hole hopping through tyrosine/tryptophan chains protects proteins from oxidative damage , 2015, Proceedings of the National Academy of Sciences.

[71]  A. Dennig,et al.  Oxidative Decarboxylation of Short-Chain Fatty Acids to 1-Alkenes. , 2015, Angewandte Chemie.

[72]  H. Gray,et al.  Electron flow through biological molecules: does hole hopping protect proteins from oxidative damage? , 2015, Quarterly Reviews of Biophysics.

[73]  A. Brash,et al.  A Catalase-related Hemoprotein in Coral Is Specialized for Synthesis of Short-chain Aldehydes , 2015, The Journal of Biological Chemistry.

[74]  V. Ahsen,et al.  Site-selective formation of an iron(iv)–oxo species at the more electron-rich iron atom of heteroleptic μ-nitrido diiron phthalocyanines , 2015, Chemical science.

[75]  Jing Zhang,et al.  Drug metabolism by cytochrome p450 enzymes: what distinguishes the pathways leading to substrate hydroxylation over desaturation? , 2015, Chemistry.

[76]  Sason Shaik,et al.  Quantum mechanical/molecular mechanical calculated reactivity networks reveal how cytochrome P450cam and Its T252A mutant select their oxidation pathways. , 2015, Journal of the American Chemical Society.

[77]  J. Groves,et al.  Manganese Catalyzed C-H Halogenation. , 2015, Accounts of chemical research.

[78]  C. Krebs,et al.  Experimental Correlation of Substrate Position with Reaction Outcome in the Aliphatic Halogenase, SyrB2. , 2015, Journal of the American Chemical Society.

[79]  Wenzhen Lai,et al.  Electrocatalytic Water Oxidation by a Water-Soluble Nickel Porphyrin Complex at Neutral pH with Low Overpotential. , 2015, Inorganic chemistry.

[80]  S. Hofbauer,et al.  Mechanism of chlorite degradation to chloride and dioxygen by the enzyme chlorite dismutase. , 2015, Archives of biochemistry and biophysics.

[81]  Dongyang Huang,et al.  Structure and Function Relationships of Heme-Based Gas Sensors and Heme-Redox Sensors , 2015 .

[82]  A. R. Parent,et al.  Improving singlet oxygen resistance during photochemical water oxidation by cobalt porphyrin catalysts. , 2015, Chemistry.

[83]  J. Groves,et al.  Manganese-catalyzed late-stage aliphatic C-H azidation. , 2015, Journal of the American Chemical Society.

[84]  Job L Grant,et al.  Decarboxylation of fatty acids to terminal alkenes by cytochrome P450 compound I. , 2015, Journal of the American Chemical Society.

[85]  J. Caruthers,et al.  Mechanistic study of a manganese porphyrin catalyst for on-demand production of chlorine dioxide in water , 2015 .

[86]  Binh Khanh Mai,et al.  Determination of Spin Inversion Probability, H-Tunneling Correction, and Regioselectivity in the Two-State Reactivity of Nonheme Iron(IV)-Oxo Complexes. , 2015, The journal of physical chemistry letters.

[87]  R. Kourist A new class of enzymes discovered: a non-heme oxidase produces medium-chain 1-alkenes. , 2015, Angewandte Chemie.

[88]  J. Bennett,et al.  Fungal volatile organic compounds and their role in ecosystems , 2015, Applied Microbiology and Biotechnology.

[89]  J. Groves,et al.  Heme-thiolate ferryl of aromatic peroxygenase is basic and reactive , 2015, Proceedings of the National Academy of Sciences.

[90]  Frances H Arnold,et al.  Expanding the enzyme universe: accessing non-natural reactions by mechanism-guided directed evolution. , 2015, Angewandte Chemie.

[91]  J. Groves,et al.  Ferryl protonation in oxoiron(IV) porphyrins and its role in oxygen transfer. , 2015, Journal of the American Chemical Society.

[92]  M. Blomberg,et al.  How cytochrome c oxidase can pump four protons per oxygen molecule at high electrochemical gradient. , 2015, Biochimica et biophysica acta.

[93]  Zhuqi Chen,et al.  The reactivity of the active metal oxo and hydroxo intermediates and their implications in oxidations. , 2015, Chemical Society reviews.

[94]  L. Olsen,et al.  Mechanism of the N-hydroxylation of primary and secondary amines by cytochrome P450. , 2015, Chemical research in toxicology.

[95]  S. Gerdes,et al.  Noncanonical coproporphyrin-dependent bacterial heme biosynthesis pathway that does not use protoporphyrin , 2015, Proceedings of the National Academy of Sciences.

[96]  S. Yoshikawa,et al.  Reaction mechanism of cytochrome c oxidase. , 2015, Chemical reviews.

[97]  D. Bauer,et al.  Photobiocatalytic decarboxylation for olefin synthesis. , 2015, Chemical communications.

[98]  K. Karlin,et al.  A “Naked” FeIII-(O22–)-CuII Species Allows for Structural and Spectroscopic Tuning of Low-Spin Heme-Peroxo-Cu Complexes , 2015, Journal of the American Chemical Society.

[99]  J. Kincaid,et al.  Resonance Raman spectroscopy reveals pH-dependent active site structural changes of lactoperoxidase compound 0 and its ferryl heme O-O bond cleavage products. , 2015, Journal of the American Chemical Society.

[100]  S. Shaik,et al.  How does tunneling contribute to counterintuitive H-abstraction reactivity of nonheme Fe(IV)O oxidants with alkanes? , 2015, Journal of the American Chemical Society.

[101]  M. Crestoni,et al.  A comprehensive test set of epoxidation rate constants for iron(iv)–oxo porphyrin cation radical complexes , 2014, Chemical science.

[102]  Jamie H. D. Cate,et al.  Microbial biosynthesis of medium-chain 1-alkenes by a nonheme iron oxidase , 2014, Proceedings of the National Academy of Sciences.

[103]  K. Rajakumar,et al.  A Dimeric Chlorite Dismutase Exhibits O2-Generating Activity and Acts as a Chlorite Antioxidant in Klebsiella pneumoniae MGH 78578 , 2014, Biochemistry.

[104]  Jarad A. Mason,et al.  A five-coordinate heme dioxygen adduct isolated within a metal-organic framework. , 2014, Journal of the American Chemical Society.

[105]  M. Kärkäs,et al.  Artificial photosynthesis: molecular systems for catalytic water oxidation. , 2014, Chemical reviews.

[106]  H. Fujii,et al.  Factors affecting hydrogen-tunneling contribution in hydroxylation reactions promoted by oxoiron(IV) porphyrin π-cation radical complexes. , 2014, Inorganic chemistry.

[107]  Frank Neese,et al.  Electronic structure of the oxygen-evolving complex in photosystem II prior to O-O bond formation , 2014, Science.

[108]  P. Moody,et al.  Neutron cryo-crystallography captures the protonation state of ferryl heme in a peroxidase , 2014, Science.

[109]  J. Groves,et al.  Fishing for peroxidase protons , 2014, Science.

[110]  Maria M. Reif,et al.  Investigation of Ion Binding in Chlorite Dismutases by Means of Molecular Dynamics Simulations , 2014, Biochemistry.

[111]  Michael T. Green,et al.  Setting an Upper Limit on the Myoglobin Iron(IV)Hydroxide pKa: Insight into Axial Ligand Tuning in Heme Protein Catalysis , 2014, Journal of the American Chemical Society.

[112]  J. Groves,et al.  Late stage benzylic C-H fluorination with [¹⁸F]fluoride for PET imaging. , 2014, Journal of the American Chemical Society.

[113]  S. Hofbauer,et al.  Transiently Produced Hypochlorite Is Responsible for the Irreversible Inhibition of Chlorite Dismutase , 2014, Biochemistry.

[114]  Sharon Hammes-Schiffer,et al.  Hydrogen tunneling in enzymes and biomimetic models. , 2014, Chemical reviews.

[115]  T. Poulos Heme enzyme structure and function. , 2014, Chemical reviews.

[116]  Li Tian,et al.  Copper active sites in biology. , 2014, Chemical reviews.

[117]  M. Hofrichter,et al.  Oxidations catalyzed by fungal peroxygenases. , 2014, Current opinion in chemical biology.

[118]  J. Valentine,et al.  Superoxide Dismutases and Superoxide Reductases , 2014, Chemical reviews.

[119]  A. Brash,et al.  An Ancient Relative of Cyclooxygenase in Cyanobacteria Is a Linoleate 10S-Dioxygenase That Works in Tandem with a Catalase-related Protein with Specific 10S-Hydroperoxide Lyase Activity* , 2014, The Journal of Biological Chemistry.

[120]  E. Fujita,et al.  Kinetic and mechanistic studies of carbon-to-metal hydrogen atom transfer involving Os-centered radicals: evidence for tunneling. , 2014, Journal of the American Chemical Society.

[121]  J. Geng,et al.  Heme-dependent dioxygenases in tryptophan oxidation. , 2014, Archives of biochemistry and biophysics.

[122]  O. Shoji,et al.  Peroxygenase reactions catalyzed by cytochromes P450 , 2014, JBIC Journal of Biological Inorganic Chemistry.

[123]  J. Groves Enzymatic C-H bond activation: Using push to get pull. , 2014, Nature chemistry.

[124]  I. Shamovsky,et al.  Theoretical studies of the mechanism of N-hydroxylation of primary aromatic amines by cytochrome P450 1A2: radicaloid or anionic? , 2014, Chemical research in toxicology.

[125]  Andrew W. Munro,et al.  Structure and Biochemical Properties of the Alkene Producing Cytochrome P450 OleTJE (CYP152L1) from the Jeotgalicoccus sp. 8456 Bacterium* , 2014, The Journal of Biological Chemistry.

[126]  M. Bühl,et al.  Calculations of One-Electron Redox Potentials of Oxoiron(IV) Porphyrin Complexes. , 2014, Journal of chemical theory and computation.

[127]  Michael T. Green,et al.  Iron(IV)hydroxide pKa and the Role of Thiolate Ligation in C–H Bond Activation by Cytochrome P450 , 2013, Science.

[128]  M. Marletta,et al.  Nitric oxide-sensing H-NOX proteins govern bacterial communal behavior. , 2013, Trends in biochemical sciences.

[129]  J. Groves,et al.  Oxidative aliphatic C-H fluorination with manganese catalysts and fluoride ion , 2013, Nature Protocols.

[130]  K. Piontek,et al.  Structural Basis of Substrate Conversion in a New Aromatic Peroxygenase , 2013, The Journal of Biological Chemistry.

[131]  B. Blanc,et al.  Peroxidase-type reactions suggest a heterolytic/nucleophilic O-O joining mechanism in the heme-dependent chlorite dismutase. , 2013, Biochemistry.

[132]  A. Oliver,et al.  Correlated ligand dynamics in oxyiron picket fence porphyrins: structural and Mössbauer investigations. , 2013, Journal of the American Chemical Society.

[133]  K. Hodgson,et al.  X-ray absorption spectroscopic investigation of the electronic structure differences in solution and crystalline oxyhemoglobin , 2013, Proceedings of the National Academy of Sciences.

[134]  D. MacMillan,et al.  Visible light photoredox catalysis with transition metal complexes: applications in organic synthesis. , 2013, Chemical Reviews.

[135]  J. Groves,et al.  Efficient water oxidation catalyzed by homogeneous cationic cobalt porphyrins with critical roles for the buffer base , 2013, Proceedings of the National Academy of Sciences.

[136]  J. Groves,et al.  Driving force for oxygen-atom transfer by heme-thiolate enzymes. , 2013, Angewandte Chemie.

[137]  Martin Srnec,et al.  Elucidation of the Fe(iv)=O intermediate in the catalytic cycle of the halogenase SyrB2 , 2013, Nature.

[138]  S. D. de Visser,et al.  Rationalization of the barrier height for p-Z-styrene epoxidation by iron(IV)-oxo porphyrin cation radicals with variable axial ligands. , 2013, Inorganic chemistry.

[139]  A. Sorokin Phthalocyanine metal complexes in catalysis. , 2013, Chemical reviews.

[140]  A. R. Parent,et al.  Cobalt porphyrins as homogeneous catalysts for water oxidation. , 2013, Chemical communications.

[141]  J. Groves,et al.  Manganese-catalyzed oxidative benzylic C-H fluorination by fluoride ions. , 2013, Angewandte Chemie.

[142]  A. Dey,et al.  Direct observation of intermediates formed during steady-state electrocatalytic O2 reduction by iron porphyrins , 2013, Proceedings of the National Academy of Sciences.

[143]  F. Guengerich,et al.  Unusual Cytochrome P450 Enzymes and Reactions* , 2013, The Journal of Biological Chemistry.

[144]  Michael T. Green,et al.  Reactive Intermediates in Cytochrome P450 Catalysis* , 2013, The Journal of Biological Chemistry.

[145]  M. Schwab,et al.  Cytochrome P450 enzymes in drug metabolism: regulation of gene expression, enzyme activities, and impact of genetic variation. , 2013, Pharmacology & therapeutics.

[146]  M. Fontecave,et al.  Solar fuels generation and molecular systems: is it homogeneous or heterogeneous catalysis? , 2013, Chemical Society reviews.

[147]  S. Shaik,et al.  A theory for bioinorganic chemical reactivity of oxometal complexes and analogous oxidants: the exchange and orbital-selection rules. , 2013, Accounts of chemical research.

[148]  K. Hodgson,et al.  Iron L-edge X-ray absorption spectroscopy of oxy-picket fence porphyrin: experimental insight into Fe-O2 bonding. , 2013, Journal of the American Chemical Society.

[149]  L. Olsen,et al.  Nitrogen inversion barriers affect the N-oxidation of tertiary alkylamines by cytochromes P450. , 2013, Angewandte Chemie.

[150]  Gerrit Schüürmann,et al.  Model and mechanism: N-hydroxylation of primary aromatic amines by cytochrome P450. , 2013, Angewandte Chemie.

[151]  J. Groves,et al.  Parallel and competitive pathways for substrate desaturation, hydroxylation, and radical rearrangement by the non-heme diiron hydroxylase AlkB. , 2012, Journal of the American Chemical Society.

[152]  Andrew C. Terentis,et al.  Human Indoleamine 2,3-Dioxygenase Is a Catalyst of Physiological Heme Peroxidase Reactions , 2012, The Journal of Biological Chemistry.

[153]  P. Afanasiev,et al.  An N-bridged high-valent diiron-oxo species on a porphyrin platform that can oxidize methane. , 2012, Nature chemistry.

[154]  J. Olson,et al.  How do heme-protein sensors exclude oxygen? Lessons learned from cytochrome c', Nostoc puntiforme heme nitric oxide/oxygen-binding domain, and soluble guanylyl cyclase. , 2012, Antioxidants & redox signaling.

[155]  P. Nicholls Classical catalase: ancient and modern. , 2012, Archives of biochemistry and biophysics.

[156]  William A. Goddard,et al.  Oxidative Aliphatic C-H Fluorination with Fluoride Ion Catalyzed by a Manganese Porphyrin , 2012, Science.

[157]  Johan A. Kers,et al.  Cytochrome P450-catalysed L-tryptophan nitration in thaxtomin phytotoxin biosynthesis , 2012, Nature chemical biology.

[158]  J. Groves,et al.  Detection and kinetic characterization of a highly reactive heme-thiolate peroxygenase compound I. , 2012, Journal of the American Chemical Society.

[159]  J. Geng,et al.  Chemical rescue of the distal histidine mutants of tryptophan 2,3-dioxygenase. , 2012, Journal of the American Chemical Society.

[160]  Andrei V. Pisliakov,et al.  Structural insights into electron transfer in caa3-type cytochrome oxidase , 2012, Nature.

[161]  K. W. Hipps,et al.  Single molecule imaging of oxygenation of cobalt octaethylporphyrin at the solution/solid interface: thermodynamics from microscopy. , 2012, Journal of the American Chemical Society.

[162]  A. Oliver,et al.  Structural insights into ligand dynamics: correlated oxygen and picket motion in oxycobalt picket fence porphyrins. , 2012, Journal of the American Chemical Society.

[163]  Eric L. Null,et al.  A designed functional metalloenzyme that reduces O2 to H2O with over one thousand turnovers. , 2012, Angewandte Chemie.

[164]  R. van Eldik,et al.  Axial ligand and spin-state influence on the formation and reactivity of hydroperoxo-iron(III) porphyrin complexes. , 2012, Chemistry.

[165]  S. Shaik,et al.  The origins of dramatic axial ligand effects: closed-shell Mn(V)O complexes use exchange-enhanced open-shell States to mediate efficient H abstraction reactions. , 2012, Angewandte Chemie.

[166]  Wei Zhang,et al.  Significant increase of oxidase activity through the genetic incorporation of a tyrosine-histidine cross-link in a myoglobin model of heme-copper oxidase. , 2012, Angewandte Chemie.

[167]  I. Efimov,et al.  Heme-containing dioxygenases involved in tryptophan oxidation. , 2012, Current opinion in chemical biology.

[168]  C. Thibodeaux,et al.  Enzymatic chemistry of cyclopropane, epoxide, and aziridine biosynthesis. , 2012, Chemical reviews.

[169]  S. Shaik,et al.  A single-site mutation (F429H) converts the enzyme CYP 2B4 into a heme oxygenase: a QM/MM study. , 2012, Journal of the American Chemical Society.

[170]  S. D. de Visser,et al.  Axial ligand effect on the rate constant of aromatic hydroxylation by iron(IV)-oxo complexes mimicking cytochrome P450 enzymes. , 2012, The journal of physical chemistry. B.

[171]  J. Olson,et al.  A "sliding scale rule" for selectivity among NO, CO, and O₂ by heme protein sensors. , 2012, Biochemistry.

[172]  K. Hodgson,et al.  Spectroscopic elucidation of a new heme/copper dioxygen structure type: implications for O···O bond rupture in cytochrome c oxidase. , 2012, Angewandte Chemie.

[173]  K. Ray,et al.  The biology and chemistry of high-valent iron–oxo and iron–nitrido complexes , 2012, Nature Communications.

[174]  M. Costas Selective C–H oxidation catalyzed by metalloporphyrins , 2011 .

[175]  K. Karlin,et al.  Electronic structure of a low-spin heme/Cu peroxide complex: spin-state and spin-topology contributions to reactivity. , 2011, Inorganic chemistry.

[176]  Gernot Kayser,et al.  Selective hydroxylation of alkanes by an extracellular fungal peroxygenase , 2011, The FEBS journal.

[177]  Y. Urade,et al.  Enzymes of the cyclooxygenase pathways of prostanoid biosynthesis. , 2011, Chemical reviews.

[178]  J. Groves,et al.  Dissection of the mechanism of manganese porphyrin-catalyzed chlorine dioxide generation. , 2011, Inorganic chemistry.

[179]  I. Efimov,et al.  Proton delivery to ferryl heme in a heme peroxidase: enzymatic use of the Grotthuss mechanism. , 2011, Journal of the American Chemical Society.

[180]  H. Sugimoto,et al.  Crystal structure of H2O2-dependent cytochrome P450SPalpha with its bound fatty acid substrate: insight into the regioselective hydroxylation of fatty acids at the alpha position. , 2011, The Journal of biological chemistry.

[181]  S. Shaik,et al.  Will P450cam Hydroxylate or Desaturate Alkanes? QM and QM/MM Studies , 2011 .

[182]  K. Karlin,et al.  Homogeneous catalytic O2 reduction to water by a cytochrome c oxidase model with trapping of intermediates and mechanistic insights , 2011, Proceedings of the National Academy of Sciences.

[183]  H. Fujii,et al.  Redox potentials of oxoiron(IV) porphyrin π-cation radical complexes: participation of electron transfer process in oxygenation reactions. , 2011, Inorganic chemistry.

[184]  M. Hendrich,et al.  Enzyme Reactivation by Hydrogen Peroxide in Heme-based Tryptophan Dioxygenase* , 2011, The Journal of Biological Chemistry.

[185]  D. Nocera,et al.  Electocatalytic water oxidation by cobalt(III) hangman β-octafluoro corroles. , 2011, Journal of the American Chemical Society.

[186]  T. Ritter,et al.  Catalysis for fluorination and trifluoromethylation , 2011, Nature.

[187]  G. N. Sastry,et al.  Effect of the axial ligand on substrate sulfoxidation mediated by iron(IV)-oxo porphyrin cation radical oxidants. , 2011, Chemistry.

[188]  S. Yeh,et al.  Ferryl Derivatives of Human Indoleamine 2,3-Dioxygenase* , 2011, The Journal of Biological Chemistry.

[189]  Emma Lloyd Raven,et al.  Structure and Reaction Mechanism in the Heme Dioxygenases , 2011, Biochemistry.

[190]  B. Hoffman,et al.  Active intermediates in heme monooxygenase reactions as revealed by cryoreduction/annealing, EPR/ENDOR studies. , 2011, Archives of biochemistry and biophysics.

[191]  J. Groves,et al.  Molecular probes of the mechanism of cytochrome P450. Oxygen traps a substrate radical intermediate. , 2011, Archives of biochemistry and biophysics.

[192]  H. Ikeda,et al.  Genome mining in streptomyces. Discovery of an unprecedented P450-catalyzed oxidative rearrangement that is the final step in the biosynthesis of pentalenolactone. , 2011, Journal of the American Chemical Society.

[193]  P. Afanasiev,et al.  High-valent diiron species generated from N-bridged diiron phthalocyanine and H(2)O(2). , 2011, Dalton transactions.

[194]  J. Mayer,et al.  Understanding hydrogen atom transfer: from bond strengths to Marcus theory. , 2011, Accounts of chemical research.

[195]  J. Groves,et al.  Catalytic generation of chlorine dioxide from chlorite using a water-soluble manganese porphyrin. , 2011, Angewandte Chemie.

[196]  M. Abu‐Omar,et al.  Chlorite dismutation to chlorine dioxide catalyzed by a water-soluble manganese porphyrin. , 2011, Angewandte Chemie.

[197]  Andreas Schirmer,et al.  Terminal Olefin (1-Alkene) Biosynthesis by a Novel P450 Fatty Acid Decarboxylase from Jeotgalicoccus Species , 2011, Applied and Environmental Microbiology.

[198]  S. Shaik,et al.  Trends in Aromatic Oxidation Reactions Catalyzed by Cytochrome P450 Enzymes: A Valence Bond Modeling. , 2011, Journal of chemical theory and computation.

[199]  J. Mayer,et al.  Thermochemistry of proton-coupled electron transfer reagents and its implications. , 2010, Chemical reviews.

[200]  J. Groves,et al.  A "push-pull" mechanism for heterolytic o-o bond cleavage in hydroperoxo manganese porphyrins. , 2010, Inorganic chemistry.

[201]  Michael T. Green,et al.  Cytochrome P450 Compound I: Capture, Characterization, and C-H Bond Activation Kinetics , 2010, Science.

[202]  P. Moody,et al.  Nature of the Ferryl Heme in Compounds I and II* , 2010, The Journal of Biological Chemistry.

[203]  J. Valentine,et al.  Reversible O-O bond cleavage and formation between Mn(IV)-peroxo and Mn(V)-oxo corroles. , 2010, Journal of the American Chemical Society.

[204]  J. Lipscomb,et al.  Trapping and spectroscopic characterization of an FeIII-superoxo intermediate from a nonheme mononuclear iron-containing enzyme , 2010, Proceedings of the National Academy of Sciences.

[205]  J. Groves,et al.  Manganese porphyrins catalyze selective C-H bond halogenations. , 2010, Journal of the American Chemical Society.

[206]  J. Groves,et al.  Mechanisms of peroxynitrite interactions with heme proteins. , 2010, Inorganic chemistry.

[207]  K. M. Roberts,et al.  Anilinic N-oxides support cytochrome P450-mediated N-dealkylation through hydrogen-atom transfer. , 2010, Chemistry.

[208]  S. D. de Visser,et al.  Unprecedented rate enhancements of hydrogen-atom transfer to a manganese(V)-oxo corrolazine complex. , 2010, Angewandte Chemie.

[209]  H. Fujii,et al.  Unique properties and reactivity of high-valent manganese-oxo versus manganese-hydroxo in the salen platform. , 2010, Inorganic chemistry.

[210]  Devesh Kumar,et al.  What factors influence the rate constant of substrate epoxidation by compound I of cytochrome P450 and analogous iron(IV)-oxo oxidants? , 2010, Journal of the American Chemical Society.

[211]  S Michael Soltis,et al.  Crystallographic and single-crystal spectral analysis of the peroxidase ferryl intermediate. , 2010, Biochemistry.

[212]  K. Hodgson,et al.  Heme-copper-dioxygen complexes: toward understanding ligand-environmental effects on the coordination geometry, electronic structure, and reactivity. , 2010, Inorganic chemistry.

[213]  S. Yoshikawa,et al.  Bovine cytochrome c oxidase structures enable O2 reduction with minimization of reactive oxygens and provide a proton-pumping gate , 2010, Proceedings of the National Academy of Sciences.

[214]  J. Valentine,et al.  A biomimetic ferric hydroperoxo porphyrin intermediate. , 2010, Angewandte Chemie.

[215]  Y. Naruta,et al.  Formation of an end-on ferric peroxo intermediate upon one-electron reduction of a ferric superoxo heme. , 2010, Journal of the American Chemical Society.

[216]  A. Brash Mechanistic Aspects of CYP74 Allene Oxide Synthases and Related Cytochrome P450 Enzymes , 2010 .

[217]  Yong Wang,et al.  P450 enzymes: their structure, reactivity, and selectivity-modeled by QM/MM calculations. , 2010, Chemical reviews.

[218]  H. Sugimoto,et al.  Identification of the Fe–O2 and the Fe=O Heme Species for Indoleamine 2,3-Dioxygenase during Catalytic Turnover , 2010 .

[219]  R. van Eldik,et al.  Direct comparison of the reactivity of model complexes for Compounds 0, I, and II in oxygenation, hydrogen-abstraction, and hydride-transfer processes. , 2009, Chemistry.

[220]  Y. Naruta,et al.  Spectroscopic characterization of a hydroperoxo-heme intermediate: conversion of a side-on peroxo to an end-on hydroperoxo complex. , 2009, Angewandte Chemie.

[221]  P. Siegbahn Structures and energetics for O2 formation in photosystem II. , 2009, Accounts of chemical research.

[222]  C. Walsh,et al.  Substrate positioning controls the partition between halogenation and hydroxylation in the aliphatic halogenase, SyrB2 , 2009, Proceedings of the National Academy of Sciences.

[223]  M. Martí,et al.  Evidence for a ferryl intermediate in a heme-based dioxygenase , 2009, Proceedings of the National Academy of Sciences.

[224]  S. Shaik,et al.  Enhanced reactivities of iron(IV)-oxo porphyrin pi-cation radicals in oxygenation reactions by electron-donating axial ligands. , 2009, Chemistry.

[225]  N. Marzari,et al.  First-principles study of non-heme Fe(II) halogenase SyrB2 reactivity. , 2009, Journal of the American Chemical Society.

[226]  J. Groves,et al.  Direct detection of the oxygen rebound intermediates, ferryl Mb and NO2, in the reaction of metmyoglobin with peroxynitrite. , 2009, Journal of the American Chemical Society.

[227]  Wei Wu,et al.  Oxidation of tertiary amines by cytochrome p450-kinetic isotope effect as a spin-state reactivity probe. , 2009, Chemistry.

[228]  S. Yeh,et al.  Inhibitory substrate binding site of human indoleamine 2,3-dioxygenase. , 2009, Journal of the American Chemical Society.

[229]  J. Groves,et al.  A highly reactive p450 model compound I. , 2009, Journal of the American Chemical Society.

[230]  N. Jux,et al.  Mechanistic investigations of the reaction of an iron(III) octa-anionic porphyrin complex with hydrogen peroxide and the catalyzed oxidation of diammonium-2,2'-azinobis(3-ethylbenzothiazoline-6-sulfonate). , 2009, Inorganic chemistry.

[231]  Qin Wang,et al.  Quantitative production of compound I from a cytochrome P450 enzyme at low temperatures. Kinetics, activation parameters, and kinetic isotope effects for oxidation of benzyl alcohol. , 2009, Journal of the American Chemical Society.

[232]  A. Brash,et al.  Evidence for an Ionic Intermediate in the Transformation of Fatty Acid Hydroperoxide by a Catalase-related Allene Oxide Synthase from the Cyanobacterium Acaryochloris marina* , 2009, The Journal of Biological Chemistry.

[233]  K. Hodgson,et al.  S K-edge XAS and DFT calculations on cytochrome P450: covalent and ionic contributions to the cysteine-Fe bond and their contribution to reactivity. , 2009, Journal of the American Chemical Society.

[234]  Licheng Sun,et al.  Nucleophilic attack of hydroxide on a Mn(V) oxo complex: a model of the O-O bond formation in the oxygen evolving complex of photosystem II. , 2009, Journal of the American Chemical Society.

[235]  Yan Zhang,et al.  Quantum tunneling in testosterone 6beta-hydroxylation by cytochrome P450: reaction dynamics calculations employing multiconfiguration molecular-mechanical potential energy surfaces. , 2009, The journal of physical chemistry. A.

[236]  S. D. de Visser,et al.  How does the axial ligand of cytochrome P450 biomimetics influence the regioselectivity of aliphatic versus aromatic hydroxylation? , 2009, Chemistry.

[237]  S. De Domenico,et al.  Plant Cytochrome CYP74 Family: Biochemical Features, Endocellular Localisation, Activation Mechanism in Plant Defence and Improvements for Industrial Applications , 2009, Chembiochem : a European journal of chemical biology.

[238]  I. Feussner,et al.  Biosynthesis of oxylipins in non-mammals. , 2009, Progress in lipid research.

[239]  Sarah J. Thackray,et al.  Reassessment of the reaction mechanism in the heme dioxygenases. , 2009, Journal of the American Chemical Society.

[240]  M. Maté,et al.  Protein Radicals in Fungal Versatile Peroxidase , 2009, Journal of Biological Chemistry.

[241]  R. Crabtree,et al.  C-H oxidation by hydroxo manganese(v) porphyrins: a DFT study. , 2009, Chemical communications.

[242]  C. Walsh,et al.  Structural Analysis of an Open Active Site Conformation of Nonheme Iron Halogenase CytC3 , 2009, Journal of the American Chemical Society.

[243]  Michael J. Zdilla,et al.  Concerted dismutation of chlorite ion: water-soluble iron-porphyrins as first generation model complexes for chlorite dismutase. , 2009, Inorganic chemistry.

[244]  Akihiro Takahashi,et al.  Effect of imidazole and phenolate axial ligands on the electronic structure and reactivity of oxoiron(IV) porphyrin pi-cation radical complexes: drastic increase in oxo-transfer and hydrogen abstraction reactivities. , 2009, Inorganic chemistry.

[245]  A. Borovik,et al.  C-H bond cleavage with reductants: re-investigating the reactivity of monomeric Mn(III/IV)-oxo complexes and the role of oxo ligand basicity. , 2009, Journal of the American Chemical Society.

[246]  S. Shaik,et al.  A two-state reactivity model explains unusual kinetic isotope effect patterns in C-H bond cleavage by nonheme oxoiron(IV) complexes. , 2009, Angewandte Chemie.

[247]  Michael J. Zdilla,et al.  Mechanism of and exquisite selectivity for O–O bond formation by the heme-dependent chlorite dismutase , 2008, Proceedings of the National Academy of Sciences.

[248]  Wei Wu,et al.  Corrigendum: Which oxidant is really responsible for sulfur oxidation by cytochrome P450? (Angewandte Chemie - International Edition (2007) 46, (8168-8170)) , 2008 .

[249]  Sason Shaik,et al.  Nature of the Fe-O2 bonding in oxy-myoglobin: effect of the protein. , 2008, Journal of the American Chemical Society.

[250]  M. Newcomb,et al.  Spectra and kinetic studies of the compound I derivative of cytochrome P450 119. , 2008, Journal of the American Chemical Society.

[251]  V. Guallar Heme electron transfer in peroxidases: the propionate e-pathway. , 2008, The journal of physical chemistry. B.

[252]  M. Hamberg,et al.  Structural insights into the evolutionary paths of oxylipin biosynthetic enzymes , 2008, Nature.

[253]  R. Crabtree,et al.  A rational basis for the axial ligand effect in C-H oxidation by [MnO(porphyrin)(X)]+ (X = H2O, OH-, O2-) from a DFT study. , 2008, Inorganic chemistry.

[254]  K. Morokuma,et al.  Density functional theory study on a missing piece in understanding of heme chemistry: the reaction mechanism for indoleamine 2,3-dioxygenase and tryptophan 2,3-dioxygenase. , 2008, Journal of the American Chemical Society.

[255]  U. Jahn,et al.  Beyond prostaglandins--chemistry and biology of cyclic oxygenated metabolites formed by free-radical pathways from polyunsaturated fatty acids. , 2008, Angewandte Chemie.

[256]  Lars Olsen,et al.  Sulfoxide, Sulfur, and Nitrogen Oxidation and Dealkylation by Cytochrome P450. , 2008, Journal of chemical theory and computation.

[257]  R. van Eldik,et al.  Which oxidant is really responsible for P450 model oxygenation reactions? A kinetic approach. , 2008, Angewandte Chemie.

[258]  J. Groves,et al.  Cage escape competes with geminate recombination during alkane hydroxylation by the diiron oxygenase AlkB. , 2008, Angewandte Chemie.

[259]  G. Prendergast Immune escape as a fundamental trait of cancer: focus on IDO , 2008, Oncogene.

[260]  M. Newcomb,et al.  Tunneling in C-H oxidation reactions by an oxoiron(IV) porphyrin radical cation: direct measurements of very large H/D kinetic isotope effects. , 2008, Journal of the American Chemical Society.

[261]  U. Ryde,et al.  The crystal structure of peroxymyoglobin generated through cryoradiolytic reduction of myoglobin compound III during data collection. , 2008, The Biochemical journal.

[262]  Z. Gross The groves-spiro dioxomanganese(v) story. , 2008, Angewandte Chemie.

[263]  E. Kovaleva,et al.  Versatility of biological non-heme Fe(II) centers in oxygen activation reactions. , 2008, Nature chemical biology.

[264]  A. Sorokin,et al.  Bio-inspired oxidation of methane in water catalyzed by N-bridged diiron phthalocyanine complex. , 2008, Chemical communications.

[265]  W. Nam,et al.  Direct evidence for an iron(IV)-oxo porphyrin pi-cation radical as an active oxidant in catalytic oxygenation reactions. , 2008, Chemical communications.

[266]  S. Shaik,et al.  A two-state reactivity rationale for counterintuitive axial ligand effects on the C-H activation reactivity of nonheme FeIV=O oxidants. , 2008, Chemistry.

[267]  H. Fujii,et al.  Transient intermediates from Mn(salen) with sterically hindered mesityl groups: interconversion between MnIV-phenolate and MnIII-phenoxyl radicals as an origin for unique reactivity. , 2008, Inorganic chemistry.

[268]  R. Crabtree,et al.  The rebound mechanism in catalytic C-H oxidation by MnO(tpp)Cl from DFT studies: electronic nature of the active species. , 2008, Chemical communications.

[269]  J. Lipscomb,et al.  Correction for Pau et al., Substrate activation for O2 reactions by oxidized metal centers in biology , 2008, Proceedings of the National Academy of Sciences.

[270]  S. Shaik,et al.  Axial ligand tuning of a nonheme iron(IV)–oxo unit for hydrogen atom abstraction , 2007, Proceedings of the National Academy of Sciences.

[271]  A. Brash,et al.  Enzymatic synthesis of a bicyclobutane fatty acid by a hemoprotein–lipoxygenase fusion protein from the cyanobacterium Anabaena PCC 7120 , 2007, Proceedings of the National Academy of Sciences.

[272]  Wei Wu,et al.  Which oxidant is really responsible for sulfur oxidation by cytochrome P450? , 2007, Angewandte Chemie.

[273]  S. Shaik,et al.  Structural characterization of the fleeting ferric peroxo species in myoglobin: experiment and theory. , 2007, Journal of the American Chemical Society.

[274]  K. Karlin,et al.  Heme—Copper/Dioxygen Adduct Formation, Properties, and Reactivity , 2007 .

[275]  Mohammed Salah Ibrahim,et al.  Trans-dioxo manganese(V) porphyrins. , 2007, Journal of the American Chemical Society.

[276]  R. van Eldik,et al.  Low-temperature rapid-scan detection of reactive intermediates in epoxidation reactions catalyzed by a new enzyme mimic of cytochrome p450. , 2007, Journal of the American Chemical Society.

[277]  K. Karlin,et al.  Reactivity studies on Fe(III)-(O2(2-))-Cu(II) compounds: influence of the ligand architecture and copper ligand denticity. , 2007, Inorganic chemistry.

[278]  R. Eldik Fascinating inorganic/bioinorganic reaction mechanisms☆ , 2007 .

[279]  H. Fujii,et al.  Activation parameters for cyclohexene oxygenation by an oxoiron(IV) porphyrin pi-cation radical complex: entropy control of an allylic hydroxylation reaction. , 2007, Inorganic chemistry.

[280]  S. Chandrasekhar,et al.  Recent developments in the synthesis of prostaglandins and analogues. , 2007, Chemical reviews.

[281]  H. Nakajima,et al.  Reactivities of oxo and peroxo intermediates studied by hemoprotein mutants. , 2007, Accounts of chemical research.

[282]  S. Shaik,et al.  Theoretical study of N-demethylation of substituted N,N-dimethylanilines by cytochrome P450: the mechanistic significance of kinetic isotope effect profiles. , 2007, The journal of physical chemistry. B.

[283]  O. Shoji,et al.  Hydrogen peroxide dependent monooxygenations by tricking the substrate recognition of cytochrome P450BSbeta. , 2007, Angewandte Chemie.

[284]  W. Nam,et al.  High-valent iron(IV)-oxo complexes of heme and non-heme ligands in oxygenation reactions. , 2007, Accounts of chemical research.

[285]  Yi-long Yan,et al.  Intramolecular single-turnover reaction in a cytochrome C oxidase model bearing a Tyr244 mimic. , 2007, Journal of the American Chemical Society.

[286]  D. Nocera,et al.  Proton-directed redox control of O-O bond activation by heme hydroperoxidase models. , 2007, Journal of the American Chemical Society.

[287]  K. Yoshizawa,et al.  Experimental and theoretical evidence for nonheme iron(III) alkylperoxo species as sluggish oxidants in oxygenation reactions. , 2007, Angewandte Chemie.

[288]  N. Devaraj,et al.  A Cytochrome c Oxidase Model Catalyzes Oxygen to Water Reduction Under Rate-Limiting Electron Flux , 2007, Science.

[289]  S. Shaik,et al.  Compound I of nitric oxide synthase: the active site protonation state. , 2007, Journal of the American Chemical Society.

[290]  E. Solomon,et al.  Synthesis, characterization, and reactivities of manganese(V)-oxo porphyrin complexes. , 2007, Journal of the American Chemical Society.

[291]  M. Ikeda-Saito,et al.  Distinct reaction pathways followed upon reduction of oxy-heme oxygenase and oxy-myoglobin as characterized by Mössbauer spectroscopy. , 2007, Journal of the American Chemical Society.

[292]  J. Groves,et al.  Profiling mechanisms of alkane hydroxylase activity in vivo using the diagnostic substrate norcarane. , 2007, Chemistry & biology.

[293]  D. Busch,et al.  Understanding the selectivity of a moderate oxidation catalyst: hydrogen abstraction by a fully characterized, activated catalyst, the robust dihydroxo manganese(IV) complex of a bridged cyclam. , 2007, Journal of the American Chemical Society.

[294]  I. Schlichting,et al.  Structure and quantum chemical characterization of chloroperoxidase compound 0, a common reaction intermediate of diverse heme enzymes , 2007, Proceedings of the National Academy of Sciences.

[295]  Lars Carlsson,et al.  State-of-the-art Tools for Computational Site of Metabolism Predictions: Comparative Analysis, Mechanistical Insights, and Future Applications , 2007, Drug metabolism reviews.

[296]  G. Brudvig,et al.  Water-splitting chemistry of photosystem II. , 2006, Chemical reviews.

[297]  C. Sunderland,et al.  Single-turnover intermolecular reaction between a Fe(III)-superoxide-Cu(I) cytochrome c oxidase model and exogeneous Tyr244 mimics. , 2006, Chemical communications.

[298]  Michael T. Green,et al.  Resonance Raman spectroscopy of chloroperoxidase compound II provides direct evidence for the existence of an iron(IV)–hydroxide , 2006, Proceedings of the National Academy of Sciences.

[299]  C. Krebs,et al.  Evidence for basic ferryls in cytochromes P450. , 2006, Journal of the American Chemical Society.

[300]  Judith P Klinman,et al.  The role of tunneling in enzyme catalysis of C-H activation. , 2006, Biochimica et biophysica acta.

[301]  L. Ghamsari,et al.  Interaction of ascorbate peroxidase with substrates: a mechanistic and structural analysis. , 2006, Biochemistry.

[302]  D. P. Goldberg,et al.  Hydrogen atom abstraction by a high-valent manganese(V)-oxo corrolazine. , 2006, Inorganic chemistry.

[303]  R. Car,et al.  Electronic structure and reactivity of isomeric oxo-Mn(V) porphyrins: effects of spin-state crossing and pKa modulation. , 2006, Inorganic chemistry.

[304]  C. Krebs,et al.  Evidence for two ferryl species in chloroperoxidase compound II. , 2006, Journal of the American Chemical Society.

[305]  Leonardo Boechi,et al.  Dioxygen affinity in heme proteins investigated by computer simulation. , 2006, Journal of inorganic biochemistry.

[306]  Rui Zhang,et al.  Kinetic studies of reactions of iron(IV)-oxo porphyrin radical cations with organic reductants. , 2006, Journal of inorganic biochemistry.

[307]  S. Itoh Mononuclear copper active-oxygen complexes. , 2006, Current opinion in chemical biology.

[308]  Michael T. Green,et al.  On the status of ferryl protonation. , 2006, Journal of inorganic biochemistry.

[309]  J. Groves,et al.  High-valent iron in chemical and biological oxidations. , 2006, Journal of inorganic biochemistry.

[310]  M. Marletta,et al.  Nitric oxide signaling: no longer simply on or off. , 2006, Trends in biochemical sciences.

[311]  C. Walsh,et al.  Crystal structure of the non-haem iron halogenase SyrB2 in syringomycin biosynthesis , 2006, Nature.

[312]  H. Mayr,et al.  The reactivity-selectivity principle: an imperishable myth in organic chemistry. , 2006, Angewandte Chemie.

[313]  Michael T. Green Application of Badger's rule to heme and non-heme iron-oxygen bonds: an examination of ferryl protonation states. , 2006, Journal of the American Chemical Society.

[314]  Wei Wu,et al.  Kinetic isotope effect is a sensitive probe of spin state reactivity in C-H hydroxylation of N,N-dimethylaniline by cytochrome P450. , 2006, Journal of the American Chemical Society.

[315]  H. Dunford,et al.  The mechanism of Compound I formation revisited. , 2005, Journal of inorganic biochemistry.

[316]  W. Nam,et al.  A Thiolate-Ligated Nonheme Oxoiron(IV) Complex Relevant to Cytochrome P450 , 2005, Science.

[317]  B. Fox,et al.  Reaction mechanisms of non-heme diiron hydroxylases characterized in whole cells. , 2005, Journal of inorganic biochemistry.

[318]  T. Poulos,et al.  Crystallographic Study on the Dioxygen Complex of Wild-type and Mutant Cytochrome P450cam , 2005, Journal of Biological Chemistry.

[319]  K. Hodgson,et al.  Geometric and electronic structure of the heme-peroxo-copper complex [(F8TPP)FeIII-(O22-)-CuII(TMPA)](ClO4). , 2005, Journal of the American Chemical Society.

[320]  C. Walsh,et al.  SyrB2 in syringomycin E biosynthesis is a nonheme FeII alpha-ketoglutarate- and O2-dependent halogenase. , 2005, Proceedings of the National Academy of Sciences of the United States of America.

[321]  T. Poulos,et al.  Crystal Structures of the Ferrous Dioxygen Complex of Wild-type Cytochrome P450eryF and Its Mutants, A245S and A245T , 2005, Journal of Biological Chemistry.

[322]  J. Dawson,et al.  Reaction of Ferric Cytochrome P450cam with Peracids , 2005, Journal of Biological Chemistry.

[323]  F. Guengerich,et al.  Cytochrome P450 3A4-catalyzed Testosterone 6β-Hydroxylation Stereochemistry, Kinetic Deuterium Isotope Effects, and Rate-limiting Steps* , 2005, Journal of Biological Chemistry.

[324]  Ilme Schlichting,et al.  Structure and chemistry of cytochrome P450. , 2005, Chemical reviews.

[325]  Rui Zhang,et al.  Laser Flash Photolysis Generation and Kinetic Studies of Porphyrin−Manganese−Oxo Intermediates. Rate Constants for Oxidations Effected by Porphyrin−MnV−Oxo Species and Apparent Disproportionation Equilibrium Constants for Porphyrin−MnIV−Oxo Species , 2005 .

[326]  W. Nam,et al.  Oxoiron(IV) porphyrin π-cation radical complexes with a chameleon behavior in cytochrome P450 model reactions , 2005, JBIC Journal of Biological Inorganic Chemistry.

[327]  Lawrence Que,et al.  Axial coordination of carboxylate activates the non-heme FeIV=O unit. , 2005, Angewandte Chemie.

[328]  E. Solomon,et al.  Dioxygen activation by copper, heme and non-heme iron enzymes: comparison of electronic structures and reactivities. , 2005, Current opinion in chemical biology.

[329]  Sason Shaik,et al.  Theoretical perspective on the structure and mechanism of cytochrome P450 enzymes. , 2005, Chemical reviews.

[330]  F. Tani,et al.  A functional model of the cytochrome c oxidase active site: unique conversion of a heme-mu-peroxo-Cu(II) intermediate into heme- superoxo/Cu(I). , 2005, Angewandte Chemie.

[331]  H. Gray,et al.  Long-range electron transfer. , 2005, Proceedings of the National Academy of Sciences of the United States of America.

[332]  A. Brash,et al.  The structure of coral allene oxide synthase reveals a catalase adapted for metabolism of a fatty acid hydroperoxide. , 2005, Proceedings of the National Academy of Sciences of the United States of America.

[333]  T. Rajh,et al.  Proton transfer at helium temperatures during dioxygen activation by heme monooxygenases. , 2004, Journal of the American Chemical Society.

[334]  B. Fox,et al.  Remarkable aliphatic hydroxylation by the diiron enzyme toluene 4-monooxygenase in reactions with radical or cation diagnostic probes norcarane, 1,1-dimethylcyclopropane, and 1,1-diethylcyclopropane. , 2004, Biochemistry.

[335]  Lars Ridder,et al.  Mechanism and structure-reactivity relationships for aromatic hydroxylation by cytochrome P450. , 2004, Organic & biomolecular chemistry.

[336]  D. Munn,et al.  Ido expression by dendritic cells: tolerance and tryptophan catabolism , 2004, Nature Reviews Immunology.

[337]  R. Zangar,et al.  Mechanisms that regulate production of reactive oxygen species by cytochrome P450. , 2004, Toxicology and applied pharmacology.

[338]  J. I. Brauman,et al.  Radical autoxidation and autogenous O2 evolution in manganese-porphyrin catalyzed alkane oxidations with chlorite. , 2004, Inorganic chemistry.

[339]  Eftychia Pinakoulaki,et al.  Resonance Raman detection of the Fe2+-C-N modes in heme-copper oxidases: a probe of the active site. , 2004, Inorganic chemistry.

[340]  John D. Coates,et al.  Microbial perchlorate reduction: rocket-fuelled metabolism , 2004, Nature Reviews Microbiology.

[341]  S. Shaik,et al.  How do aldehyde side products occur during alkene epoxidation by cytochrome P450? Theory reveals a state-specific multi-state scenario where the high-spin component leads to all side products. , 2004, Journal of inorganic biochemistry.

[342]  Harry B Gray,et al.  Oxoiron(IV) in Chloroperoxidase Compound II Is Basic: Implications for P450 Chemistry , 2004, Science.

[343]  M. Finn,et al.  Chemistry of the t-butoxyl radical: evidence that most hydrogen abstractions from carbon are entropy-controlled. , 2004, Journal of the American Chemical Society.

[344]  P. H. Buist,et al.  Fatty acid desaturases: selecting the dehydrogenation channel. , 2004, Natural product reports.

[345]  C. Sunderland,et al.  Functional analogues of cytochrome c oxidase, myoglobin, and hemoglobin. , 2004, Chemical reviews.

[346]  T. D. Stack,et al.  Structure and spectroscopy of copper-dioxygen complexes. , 2004, Chemical reviews.

[347]  K. Karlin,et al.  Synthetic models for heme-copper oxidases. , 2004, Chemical reviews.

[348]  L. Que,et al.  Dioxygen activation at mononuclear nonheme iron active sites: enzymes, models, and intermediates. , 2004, Chemical reviews.

[349]  Patrik Rydberg,et al.  On the role of the axial ligand in heme proteins: a theoretical study , 2004, JBIC Journal of Biological Inorganic Chemistry.

[350]  M. J. Coon,et al.  Hydroxylation by the hydroperoxy-iron species in cytochrome P450 enzymes. , 2004, Journal of the American Chemical Society.

[351]  Christine M. Bathelt,et al.  Aromatic hydroxylation by cytochrome P450: model calculations of mechanism and substituent effects. , 2003, Journal of the American Chemical Society.

[352]  K. Karlin,et al.  An iron-peroxo porphyrin complex: new synthesis and reactivity toward a Cu(II) complex giving a heme-peroxo-copper adduct. , 2003, Journal of the American Chemical Society.

[353]  W. Trager,et al.  The use of deuterium isotope effects to probe the active site properties, mechanism of cytochrome P450-catalyzed reactions, and mechanisms of metabolically dependent toxicity. , 2003, Drug metabolism and disposition: the biological fate of chemicals.

[354]  Eftychia Pinakoulaki,et al.  The active site structure of heme a33+-C≡N-CuB2+ of cytochrome aa3 oxidase as revealed from resonance Raman scattering , 2003 .

[355]  F. Arnold,et al.  A self-sufficient peroxide-driven hydroxylation biocatalyst. , 2003, Angewandte Chemie.

[356]  Yi Lu,et al.  The role of copper and protons in heme-copper oxidases: kinetic study of an engineered heme-copper center in myoglobin. , 2003, Proceedings of the National Academy of Sciences of the United States of America.

[357]  F. Tani,et al.  Isolation and crystal structure of a peroxo-bridged heme-copper complex. , 2003, Angewandte Chemie.

[358]  J. Groves,et al.  Xylene monooxygenase, a membrane-spanning non-heme diiron enzyme that hydroxylates hydrocarbons via a substrate radical intermediate , 2003, JBIC Journal of Biological Inorganic Chemistry.

[359]  S. Shaik,et al.  A proton-shuttle mechanism mediated by the porphyrin in benzene hydroxylation by cytochrome p450 enzymes. , 2003, Journal of the American Chemical Society.

[360]  R. Friesner,et al.  Mechanistic studies on the hydroxylation of methane by methane monooxygenase. , 2003, Chemical reviews.

[361]  Lawrence J Marnett,et al.  Mechanism of free radical oxygenation of polyunsaturated fatty acids by cyclooxygenases. , 2003, Chemical reviews.

[362]  C. Sunderland,et al.  Spectroscopic evidence for a heme-superoxide/Cu(I) intermediate in a functional model of cytochrome c oxidase. , 2003, Journal of the American Chemical Society.

[363]  M. J. Coon,et al.  Kinetic isotope effects implicate two electrophilic oxidants in cytochrome p450-catalyzed hydroxylations. , 2003, Journal of the American Chemical Society.

[364]  T. Poulos,et al.  High-resolution crystal structures and spectroscopy of native and compound I cytochrome c peroxidase. , 2003, Biochemistry.

[365]  A. Conesa,et al.  Examining the Role of Glutamic Acid 183 in Chloroperoxidase Catalysis* , 2003, The Journal of Biological Chemistry.

[366]  J. Groves The bioinorganic chemistry of iron in oxygenases and supramolecular assemblies , 2003, Proceedings of the National Academy of Sciences of the United States of America.

[367]  K. Karlin,et al.  Superoxo, μ-peroxo, and μ-oxo complexes from heme/O2 and heme-Cu/O2 reactivity: Copper ligand influences in cytochrome c oxidase models , 2003, Proceedings of the National Academy of Sciences of the United States of America.

[368]  Dong-Sun Lee,et al.  Substrate Recognition and Molecular Mechanism of Fatty Acid Hydroxylation by Cytochrome P450 from Bacillus subtilis , 2003, The Journal of Biological Chemistry.

[369]  H. Bartsch,et al.  CYP1A1 and GSTM1 genotypes affect benzo[a]pyrene DNA adducts in smokers' lung: comparison with aromatic/hydrophobic adduct formation. , 2002, Carcinogenesis.

[370]  S. Sligar,et al.  Formation and Decay of Hydroperoxo-Ferric Heme Complex in Horseradish Peroxidase Studied by Cryoradiolysis* , 2002, The Journal of Biological Chemistry.

[371]  P. H. Buist,et al.  Fatty acid desaturation: variations on an oxidative theme. , 2002, Current opinion in chemical biology.

[372]  S. Shaik,et al.  Two-state reactivity mechanisms of hydroxylation and epoxidation by cytochrome P-450 revealed by theory. , 2002, Current opinion in chemical biology.

[373]  A. Grechkin Hydroperoxide lyase and divinyl ether synthase. , 2002, Prostaglandins & other lipid mediators.

[374]  J. Hajdu,et al.  The catalytic pathway of horseradish peroxidase at high resolution , 2002, Nature.

[375]  Je Seung Lee,et al.  Isolation of an oxomanganese(V) porphyrin intermediate in the reaction of a manganese(III) porphyrin complex and H2O2 in aqueous solution. , 2002, Chemistry.

[376]  Stephen G. Sligar,et al.  Kinetic Characterization of Compound I Formation in the Thermostable Cytochrome P450 CYP119* , 2002, The Journal of Biological Chemistry.

[377]  D. Truhlar,et al.  The incorporation of quantum effects in enzyme kinetics modeling. , 2002, Accounts of chemical research.

[378]  H. Fujii Electronic structure and reactivity of high-valent oxo iron porphyrins , 2002 .

[379]  B. Dalhus,et al.  An iron hydroxide moiety in the 1.35 Å resolution structure of hydrogen peroxide derived myoglobin compound II at pH 5.2 , 2002, JBIC Journal of Biological Inorganic Chemistry.

[380]  J. Mayer,et al.  Application of the Marcus Cross Relation to Hydrogen Atom Transfer Reactions , 2001, Science.

[381]  R. Schmid,et al.  Engineering Cytochrome P450 BM-3 for Oxidation of Polycyclic Aromatic Hydrocarbons , 2001, Applied and Environmental Microbiology.

[382]  J. Groves,et al.  Intermediate Q from soluble methane monooxygenase hydroxylates the mechanistic substrate probe norcarane: evidence for a stepwise reaction. , 2001, Journal of the American Chemical Society.

[383]  M T Green,et al.  The structure and spin coupling of catalase compound I: a study of noncovalent effects. , 2001, Journal of the American Chemical Society.

[384]  M. Morton,et al.  N-dealkylation of an N-cyclopropylamine by horseradish peroxidase. Fate of the cyclopropyl group. , 2001, Journal of the American Chemical Society.

[385]  S. Shaik,et al.  Chameleon States: High-Valent Metal-Oxo Species of Cytochrome P450 and Its Ruthenium Analogue. , 2001, Angewandte Chemie.

[386]  F. Guengerich,et al.  Common and uncommon cytochrome P450 reactions related to metabolism and chemical toxicity. , 2001, Chemical research in toxicology.

[387]  S. Shaik,et al.  Multi-state epoxidation of ethene by cytochrome P450: a quantum chemical study. , 2001, Journal of the American Chemical Society.

[388]  M. Kaneko,et al.  Molecular catalysts for water oxidation. , 2001, Chemical reviews.

[389]  Q. Gibson,et al.  Mapping the Pathways for O2 Entry Into and Exit from Myoglobin* , 2001, The Journal of Biological Chemistry.

[390]  J. Ogawa,et al.  Critical role of the residue size at position 87 in H2O2- dependent substrate hydroxylation activity and H2O2 inactivation of cytochrome P450BM-3. , 2001, Biochemical and biophysical research communications.

[391]  S. Sligar,et al.  Hydroxylation of camphor by reduced oxy-cytochrome P450cam: mechanistic implications of EPR and ENDOR studies of catalytic intermediates in native and mutant enzymes. , 2001, Journal of the American Chemical Society.

[392]  M. Morton,et al.  Enzymatic N-dealkylation of an N-cyclopropylamine: an unusual fate for the cyclopropyl group. , 2001, Journal of the American Chemical Society.

[393]  D. Rousseau,et al.  Simultaneous observation of the O---O and Fe---O2 stretching modes in oxyhemoglobins. , 2001, Proceedings of the National Academy of Sciences of the United States of America.

[394]  R. Sheldon,et al.  Selective oxygen transfer catalysed by heme peroxidases: synthetic and mechanistic aspects. , 2000, Current opinion in biotechnology.

[395]  J. Lipscomb,et al.  Mechanistic insights into C-H activation from radical clock chemistry: oxidation of substituted methylcyclopropanes catalyzed by soluble methane monooxygenase from Methylosinus trichosporium OB3b. , 2000, Biochimica et biophysica acta.

[396]  J. Groves,et al.  Rapid, Reversible Oxygen Atom Transfer between an Oxomanganese(V) Porphyrin and Bromide: A Haloperoxidase Mimic with Enzymatic Rates. , 2000, Angewandte Chemie.

[397]  Cheal Kim,et al.  Remarkable Anionic Axial Ligand Effects of Iron(III) Porphyrin Complexes on the Catalytic Oxygenations of Hydrocarbons by H2O2 and the Formation of Oxoiron(IV) Porphyrin Intermediates by m‐Chloroperoxybenzoic Acid , 2000 .

[398]  Michael T. Green Imidazole-Ligated Compound I Intermediates: The Effects of Hydrogen Bonding , 2000 .

[399]  S. Shaik,et al.  A Model “Rebound” Mechanism of Hydroxylation by Cytochrome P450: Stepwise and Effectively Concerted Pathways, and Their Reactivity Patterns , 2000 .

[400]  Thomas R. Klinckman,et al.  Inter- and Intramolecular Experimental and Calculated Equilibrium Isotope Effects for (silox)₂(ᵗBu₃SiND)TiR + RH (silox = ᵗBu₃SiO): Inferred Kinetic Isotope Effects for RH/D Addition to Transient (silox)₂Ti=NSiᵗBu₃ , 2000 .

[401]  J Berendzen,et al.  The catalytic pathway of cytochrome p450cam at atomic resolution. , 2000, Science.

[402]  S. Shaik,et al.  Two-state reactivity as a new concept in organometallic chemistry. , 2000, Accounts of chemical research.

[403]  J Berendzen,et al.  Crystal structures of myoglobin-ligand complexes at near-atomic resolution. , 1999, Biophysical journal.

[404]  M. Lim,et al.  Biomimetic Alkane Hydroxylations by an Iron(III) Porphyrin Complex with H2O2 and by a High-Valent Iron(IV) Oxo Porphyrin Cation Radical Complex , 1999 .

[405]  J. Lipscomb,et al.  Probing the mechanism of C-H activation: oxidation of methylcubane by soluble methane monooxygenase from Methylosinus trichosporium OB3b. , 1999, Biochemistry.

[406]  J. Groves,et al.  Unusual Kinetic Stability of a Ground-State Singlet Oxomanganese(V) Porphyrin. Evidence for a Spin State Crossing Effect , 1999 .

[407]  P. R. Gardner,et al.  Nitric oxide dioxygenase: an enzymic function for flavohemoglobin. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[408]  T. Tomizaki,et al.  Redox-coupled crystal structural changes in bovine heart cytochrome c oxidase. , 1998, Science.

[409]  Amnon Kohen,et al.  Enzyme Catalysis: Beyond Classical Paradigms† , 1998 .

[410]  W. Nam,et al.  Water-Soluble Iron Porphyrin Complex-Catalyzed Epoxidation of Olefins with Hydrogen Peroxide and tert-Butyl Hydroperoxide in Aqueous Solution , 1998 .

[411]  H. Michel,et al.  Structure at 2.7 A resolution of the Paracoccus denitrificans two-subunit cytochrome c oxidase complexed with an antibody FV fragment. , 1997, Proceedings of the National Academy of Sciences of the United States of America.

[412]  W. Tolman Making and Breaking the Dioxygen O-O Bond: New Insights from Studies of Synthetic Copper Complexes , 1997 .

[413]  B. Tidor Molecular dynamics simulations , 1997, Current Biology.

[414]  Z. Gross,et al.  Reaction profile of the last step in cytochrome P-450 catalysis revealed by studies of model complexes , 1997, JBIC Journal of Biological Inorganic Chemistry.

[415]  J. Groves,et al.  Detection and Characterization of an Oxomanganese(V) Porphyrin Complex by Rapid-Mixing Stopped-Flow Spectrophotometry , 1997 .

[416]  T. Traylor,et al.  Polyhaloporphyrins: Unusual Ligands for Metals and Metal-Catalyzed Oxidations , 1997 .

[417]  W. Tolman MAKING AND BREAKING THE DIOXYGEN 0-0 BOND : NEW INSIGHTS FROM STUDIES OF SYNTHETIC COPPER COMPLEXES , 1997 .

[418]  Jeffrey P. Jones,et al.  A New Mechanistic Probe for Cytochrome P450: An Application of Isotope Effect Profiles , 1997 .

[419]  J. Dawson,et al.  Heme-Containing Oxygenases. , 1996, Chemical reviews.

[420]  F. Guengerich,et al.  Evidence for a 1-Electron Oxidation Mechanism in N-Dealkylation of N,N-Dialkylanilines by Cytochrome P450 2B1 , 1996, The Journal of Biological Chemistry.

[421]  M. Ikeda-Saito,et al.  High Resolution Crystal Structures of the Deoxy, Oxy, and Aquomet Forms of Cobalt Myoglobin* , 1996, The Journal of Biological Chemistry.

[422]  S. Aust,et al.  EPR detection and characterization of lignin peroxidase porphyrin pi-cation radical. , 1996, Biochemistry.

[423]  K. Shinzawa-Itoh,et al.  Observation of Multiple CN-Isotope-Sensitive Raman Bands for CN- Adducts of Hemoglobin, Myoglobin, and Cytochrome c Oxidase: Evidence for Vibrational Coupling between the Fe−C−N Bending and Porphyrin In-Plane Modes , 1996 .

[424]  Z. Gross The effect of axial ligands on the reactivity and stability of the oxoferryl moiety in model complexes of Compound I of heme-dependent enzymes , 1996, JBIC Journal of Biological Inorganic Chemistry.

[425]  H. Fujii,et al.  ESR Studies of A1u and A2u Oxoiron(IV) Porphyrin π-Cation Radical Complexes. Spin Coupling between Ferryl Iron and A1u/A2u Orbitals , 1996 .

[426]  Zeev Gross,et al.  Direct Resonance Raman Evidence for a Trans Influence on the Ferryl Fragment in Models of Compound I Intermediates of Heme Enzymes , 1996 .

[427]  Jason A. Halfen,et al.  Reversible Cleavage and Formation of the Dioxygen O-O Bond Within a Dicopper Complex , 1996, Science.

[428]  K. Karlin,et al.  XAS Structural Comparisons of Reversibly Interconvertible Oxo- and Hydroxo-Bridged Heme-Copper Oxidase Model Compounds , 1996 .

[429]  S. Shaik,et al.  Two‐State Reactivity in Organometallic Gas‐Phase Ion Chemistry , 1995 .

[430]  T. Poulos,et al.  The crystal structure of chloroperoxidase: a heme peroxidase--cytochrome P450 functional hybrid. , 1995, Structure.

[431]  T. Poulos,et al.  Identification of a porphyrin pi cation radical in ascorbate peroxidase compound I. , 1995, Biochemistry.

[432]  O. Almarsson,et al.  A Homolytic Mechanism of O-O Bond Scission Prevails in the Reactions of Alkyl Hydroperoxides with an Octacationic Tetraphenylporphinato-Iron(III) Complex in Aqueous-Solution , 1995 .

[433]  Jeffrey P. Jones,et al.  Mechanism of Oxidative Amine Dealkylation of Substituted N,N-Dimethylanilines by Cytochrome P-450: Application of Isotope Effect Profiles , 1995 .

[434]  B. Meunier,et al.  OXIDATION AT CARBON-1' OF DNA DEOXYRIBOSES BY THE MN-TMPYP/KHSO5 SYSTEM RESULTS FROM A CYTOCHROME P-450-TYPE HYDROXYLATION REACTION , 1995 .

[435]  C. Perrin,et al.  REACTIONS OF IRON(III) PORPHYRINS WITH OXIDANTS. STRUCTURE-REACTIVITY STUDIES , 1995 .

[436]  R. Brugger,et al.  Prostacyclin and Thromboxane Synthase: New Aspects of Hemethiolate Catalysis , 1994 .

[437]  John T. Groves,et al.  Preparation and Reactivity of Oxoiron(IV) Porphyrins , 1994 .

[438]  D. Rousseau,et al.  Synthetic Analog for the Oxygen Binding Site in Cytochrome c Oxidase , 1994 .

[439]  A. Fabiano,et al.  "Redox Tautomerism" in High-Valent Metal-oxo-aquo Complexes. Origin of the Oxygen Atom in Epoxidation Reactions Catalyzed by Water-Soluble Metalloporphyrins , 1994 .

[440]  Y. Naruta,et al.  Oxygen Evolution by Oxidation of Water with Manganese Porphyrin Dimers , 1994 .

[441]  T. Egawa,et al.  Evidence for compound I formation in the reaction of cytochrome P450cam with m-chloroperbenzoic acid. , 1994, Biochemical and biophysical research communications.

[442]  H. Gray,et al.  Mechanism of catalytic oxygenation of alkanes by halogenated iron porphyrins. , 1994, Science.

[443]  Christopher A. Reed,et al.  Synthetic Heme Dioxygen Complexes , 1994 .

[444]  Zeev Gross,et al.  A Pronounced Axial Ligand Effect on the Reactivity of Oxoiron(IV) Porphyrin Cation Radicals , 1994 .

[445]  B. Hoffman,et al.  EPR and ENDOR detection of compound I from Micrococcus lysodeikticus catalase. , 1993, Biochemistry.

[446]  Jeffrey P. Jones,et al.  On isotope effects for the cytochrome P-450 oxidation of substituted N,N-dimethylanilines , 1993 .

[447]  B. Meunier,et al.  Intramolecular kinetic isotope effects in alkane hydroxylations catalyzed by manganese and iron porphyrin complexes , 1993 .

[448]  H. Fujii Effects of the electron-withdrawing power of substituents on the electronic structure and reactivity in oxoiron(IV) porphyrin π-cation radical complexes , 1993 .

[449]  F. Guengerich,et al.  Partitioning between N-dealkylation and N-oxygenation in the oxidation of N,N-dialkylarylamines catalyzed by cytochrome P450 2B1. , 1993, The Journal of biological chemistry.

[450]  J. Vervoort,et al.  Regioselectivity of cytochrome P-450 catalyzed hydroxylation of fluorobenzenes predicted by calculated frontier orbital substrate characteristics. , 1993, Biochemistry.

[451]  I. Morishima,et al.  Direct observation of the push effect on the oxygen-oxygen bond cleavage of acylperoxoiron(III) porphyrin complexes , 1993 .

[452]  L. Constantino,et al.  The microsomal demethylation of N,N-dimethylbenzamides. Substituent and kinetic deuterium isotope effects. , 1992, Biochemical pharmacology.

[453]  Yongho Kim,et al.  The experimental manifestations of corner-cutting tunneling , 1992 .

[454]  L. Meijer,et al.  Allene oxide and aldehyde biosynthesis in starfish oocytes. , 1991, The Journal of biological chemistry.

[455]  A. Cho,et al.  Determination of the mechanism of demethylenation of (methylenedioxy)phenyl compounds by cytochrome P450 using deuterium isotope effects. , 1991, Journal of medicinal chemistry.

[456]  R. Hanzlik,et al.  Kinetic deuterium isotope effects on the N-demethylation of tertiary amides by cytochrome P-450. , 1990, The Journal of biological chemistry.

[457]  D. Cane,et al.  Biosynthesis of pentalenene and pentalenolactone , 1990 .

[458]  P. Harvey,et al.  Oxidation of phenolic compounds by ligninase , 1990 .

[459]  Feng Xu,et al.  Mechanisms of reactions of iron(III) porphyrins with hydrogen peroxide and hydroperoxides: solvent and solvent isotope effects , 1990 .

[460]  D. Swinney,et al.  Isotopically labeled chlorobenzenes as probes for the mechanism of cytochrome P-450 catalyzed aromatic hydroxylation. , 1989, Biochemistry.

[461]  C. Che,et al.  High-valent ruthenium(IV) and -(VI) oxo complexes of octaethylporphyrin. Synthesis, spectroscopy, and reactivities , 1989 .

[462]  K. Tajima A possible model of a hemoprotein-hydrogen peroxide complex , 1989 .

[463]  D B Goodin,et al.  Identification by ENDOR of Trp191 as the free-radical site in cytochrome c peroxidase compound ES. , 1989, Science.

[464]  H. V. Van Wart,et al.  Elementary steps in the formation of horseradish peroxidase compound I: direct observation of compound 0, a new intermediate with a hyperporphyrin spectrum. , 1989, Biochemistry.

[465]  J. Groves,et al.  Synthesis, Characterization, and Reactivity of Oxomanganese(IV) Porphyrin Complexes. , 1989 .

[466]  F. G. Bordwell,et al.  Equilibrium Acidities in Dimethyl Sulfoxide Solution , 1988 .

[467]  T. Baillie,et al.  Cytochrome P-450-catalyzed desaturation of valproic acid in vitro. Species differences, induction effects, and mechanistic studies. , 1988, The Journal of biological chemistry.

[468]  C. Che,et al.  Synthesis, reactivity, and X-ray structural characterization of trans-dioxoosmium(VI) porphyrin complexes , 1988 .

[469]  J. Dawson,et al.  Probing structure-function relations in heme-containing oxygenases and peroxidases. , 1988, Science.

[470]  H. Sugimoto,et al.  The formation, characterization, and reactivity of the oxene adduct of [tetrakis(2,6-dichlorophenyl)porphinato]iron(III) perchlorate in acetonitrile. Model for the reactive intermediate of cytochrome P-450 , 1988 .

[471]  Judith N. Burstyn,et al.  Magnetic and spectroscopic characterization of an iron porphyrin peroxide complex. Peroxoferrioctaethylporphyrin(1 , 1988 .

[472]  J. Dawson,et al.  Cytochrome P-450 and chloroperoxidase: thiolate-ligated heme enzymes. Spectroscopic determination of their active-site structures and mechanistic implications of thiolate ligation , 1987 .

[473]  Feng Xu,et al.  A biomimetic model for catalase: the mechanisms of reaction of hydrogen peroxide and hydroperoxides with iron(III) porphyrins , 1987 .

[474]  R. Weiss,et al.  Formation of manganese(IV)-oxo-porphyrin derivatives by decomposition of peroxycarbonate complexes , 1987 .

[475]  T. Baillie,et al.  Cytochrome P-450--catalyzed formation of delta 4-VPA, a toxic metabolite of valproic acid. , 1987, Science.

[476]  J. Groves,et al.  Oxygen activation by metalloporphyrins related to peroxidase and cytochrome P-450. Direct observation of the oxygen-oxygen bond cleavage step. , 1986, Journal of the American Chemical Society.

[477]  K. Hodgson,et al.  Structural characterization of horseradish peroxidase using EXAFS spectroscopy. Evidence for Fe = O ligation in compounds I and II. , 1986, Journal of the American Chemical Society.

[478]  R. E. White,et al.  Stereochemical dynamics of aliphatic hydroxylation by cytochrome P-450. , 1986, Journal of the American Chemical Society.

[479]  T. C. Bruice,et al.  Influence of nitrogen base ligation and hydrogen bonding on the rate constants for oxygen transfer from percarboxylic acids and alkyl hydroperoxides to (meso-tetraphenylporphinato)manganese(III) chloride , 1986 .

[480]  T. Poulos,et al.  Cytochrome c peroxidase compound ES is identical with horseradish peroxide compound I in iron-ligand distances. , 1986, Biochemistry.

[481]  M. Chance,et al.  X-ray absorption studies of myoglobin peroxide reveal functional differences between globins and heme enzymes. , 1986, Biochemistry.

[482]  M. Rossmann,et al.  The active center of catalase. , 1985, Journal of molecular biology.

[483]  Catherine M. Reczek,et al.  Observation of the FeIVO stretching vibration of ferryl myoglobin by resonance Raman spectroscopy , 1985 .

[484]  H. Gray,et al.  Synthesis and characterization of osmium porphyrins , 1985 .

[485]  M. Hendrich,et al.  Chloroperoxidase compound I: Electron paramagnetic resonance and Mössbauer studies. , 1984, Biochemistry.

[486]  T. Poulos,et al.  X-ray absorption studies of intermediates in peroxidase activity. , 1984, Archives of biochemistry and biophysics.

[487]  J. Groves,et al.  Models of oxidized heme proteins. Preparation and characterization of a trans-dioxoruthenium(VI) porphyrin complex , 1984 .

[488]  L P Hager,et al.  Mössbauer and electron paramagnetic resonance studies of horseradish peroxidase and its catalytic intermediates. , 1984, Biochemistry.

[489]  A. Y. Lu,et al.  Kinetic isotope effects on cytochrome P-450-catalyzed oxidation reactions. The oxidative O-dealkylation of 7-ethoxycoumarin. , 1984, The Journal of biological chemistry.

[490]  T. Traylor,et al.  Model compound studies related to peroxidases. Mechanisms of reactions of hemins with peracids , 1984 .

[491]  G. L. Kedderis,et al.  The use of intramolecular isotope effects to distinguish between deprotonation and hydrogen atom abstraction mechanisms in cytochrome P-450- and peroxidase-catalyzed N-demethylation reactions. , 1983, The Journal of biological chemistry.

[492]  I. M. Davis,et al.  X-ray absorption spectroscopic studies of high valent iron porphyrins. Horseradish peroxidase compounds I and II and synthetic models. , 1983, The Journal of biological chemistry.

[493]  J. Groves,et al.  Oxygen Activation by Metalloporphyrins. Formation and Decomposition of an Acylperoxymanganese(III) Complex , 1983 .

[494]  J. Groves,et al.  Aliphatic hydroxylation catalyzed by iron porphyrin complexes , 1983 .

[495]  J. Groves,et al.  Mössbauer effect study of tight spin coupling in oxidized chloro-5,10,15,20-tetra(mesityl)porphyrinatoiron(III) , 1983 .

[496]  K. Nakamoto,et al.  Matrix-isolation infrared spectra of octaethylporphyrinatomanganese(II) and phthalocyanatomanganese(II) and their dioxygen adducts , 1983 .

[497]  J. Miller,et al.  Non-arene oxide aromatic ring hydroxylation of 2,2',5,5'-tetrachlorobiphenyl as the major metabolic pathway catalyzed by phenobarbital-induced rat liver microsomes. , 1983, The Journal of biological chemistry.

[498]  H. Kwart Temperature dependence of the primary kinetic hydrogen isotope effect as a mechanistic criterion , 1982 .

[499]  D. Rousseau,et al.  Evidence for hydrogen bonding of bound dioxygen to the distal histidine of oxycobalt myoglobin and haemoglobin , 1982, Nature.

[500]  B. Shaanan The iron–oxygen bond in human oxyhaemoglobin , 1982, Nature.

[501]  S. Phillips Structure and refinement of oxymyoglobin at 1.6 angstroms resolution , 1982 .

[502]  B. James,et al.  One-electron electrochemical reduction of a ferrous porphyrin dioxygen complex , 1981 .

[503]  R. Haushalter,et al.  High-valent iron-porphyrin complexes related to peroxidase and cytochrome P-450 , 1981 .

[504]  R. Haushalter,et al.  Hydrocarbon Oxidations with Oxometalloporphinates. Isolation and Reactions of a (Porphinato)manganese(V) Complex , 1981 .

[505]  J. Kraut,et al.  The stereochemistry of peroxidase catalysis. , 1980, The Journal of biological chemistry.

[506]  D. Griller,et al.  Free-radical clocks , 1980 .

[507]  M. Palcic,et al.  Spectrum of chloroperoxidase compound I. , 1980, Biochemical and biophysical research communications.

[508]  J. Valentine,et al.  Reactions of superoxide with iron porphyrins in aprotic solvents. A high spin ferric porphyrin peroxo complex , 1980 .

[509]  A. Balch,et al.  Mechanism of autoxidation of iron(II) porphyrins. Detection of a peroxo-bridged iron(III) porphyrin dimer and the mechanism of its thermal decomposition to the oxo-bridged iron(III) porphyrin dimer , 1980 .

[510]  N. Xuong,et al.  The crystal structure of cytochrome c peroxidase. , 1980, The Journal of biological chemistry.

[511]  I. Yamazaki,et al.  The oxidation-reduction potentials of compound I/compound II and compound II/ferric couples of horseradish peroxidases A2 and C. , 1979, The Journal of biological chemistry.

[512]  D. R. Paulson,et al.  Preparation of ruthenium(II) and ruthenium(III) myoglobin and the reaction of dioxygen, and carbon monoxide, with ruthenium(II) myoglobin. , 1979, The Journal of biological chemistry.

[513]  H. Winkler,et al.  Horseradish peroxidase compound I: evidence for spin coupling between the heme iron and a ‘free’ radical , 1979, FEBS letters.

[514]  Fred Basolo,et al.  Synthetic oxygen carriers related to biological systems , 1979 .

[515]  B. Hoffman,et al.  The Dioxygen Adducts of Several Manganese(II) Porphyrins. Electron Paramagnetic Resonance Studies , 1979 .

[516]  F. Gurd,et al.  Oxygen Binding to Myoglobins and Their Cobalt Analogues , 1979 .

[517]  C. Reed,et al.  Manganese(II) and chromium(II) porphyrin complexes: synthesis and characterization , 1978 .

[518]  R. L. Petersen,et al.  Electron capture at the iron-oxygen centre in single crystals of oxymyoglobin studied by electron spin resonance spectroscopy. , 1978, Biochimica et biophysica acta.

[519]  James P. Collman,et al.  Oxygen binding to cobalt porphyrins , 1978 .

[520]  N. Farrell,et al.  REVERSIBLE BINDING OF DIOXYGEN TO RUTHENIUM(II) PORPHYRINS , 1978 .

[521]  M. J. Coon,et al.  Aliphatic hydroxylation by highly purified liver microsomal cytochrome P-450. Evidence for a carbon radical intermediate. , 1978, Biochemical and biophysical research communications.

[522]  M. Karplus,et al.  NATURE OF THE IRON-OXYGEN BOND IN OXYHEMOGLOBIN , 1977 .

[523]  H. Dunford,et al.  On the mechanism of compound I formation from peroxidases and catalases. , 1977, Journal of theoretical biology.

[524]  C. Reed,et al.  Synthetic Models for the Oxygen-Binding Hemoproteins , 1977 .

[525]  B. Hoffman,et al.  The dioxygen adduct of meso-tetraphenylporphyrinmanganese(II), a synthetic oxygen carrier. , 1976, Journal of the American Chemical Society.

[526]  H. Dunford On the function and mechanism of action of peroxidases , 1976 .

[527]  J. Groves,et al.  Stereospecific aliphatic hydroxylation by iron-hydrogen peroxide. Evidence for a stepwise process , 1976 .

[528]  C. Reed,et al.  Chromium(II) porphyrins and an irreversible dioxygen complex , 1976 .

[529]  J. Groves,et al.  Aliphatic hydroxylation via oxygen rebound. Oxygen transfer catalyzed by iron , 1976 .

[530]  M. Sharrock,et al.  Cytochrome P450cam and its complexes. Mössbauer parameters of the heme iron. , 1976, Biochimica et biophysica acta.

[531]  B. Hoffman,et al.  SYNTHETIC OXYGEN CARRIER, A DIOXYGEN ADDUCT OF A MANGANESE PORPHYRIN , 1975 .

[532]  James A. Ibers,et al.  Synthetic Oxygen Carriers of Biological Interest , 1975 .

[533]  B. Hoffman,et al.  Letter: Synthetic oxygen carrier. A dioxygen adduct of a manganese porphyrin. , 1975, Journal of the American Chemical Society.

[534]  W. Goddard,et al.  Ozone model for bonding of an O2 to heme in oxyhemoglobin. , 1975, Proceedings of the National Academy of Sciences of the United States of America.

[535]  C. Reed,et al.  Manganese(II) porphyrins. Synthesis, structures, and preference for five-coordination , 1975 .

[536]  D. Jerina,et al.  Deuterium isotope effects during formation of phenols by hepatic monoxygenases. Evidence for an alternative to arene oxide pathway. , 1975, Biochemistry.

[537]  L. Blumenfeld,et al.  Studies on the conformational changes of metalloproteins induced by electrons in water—ethylene glycol solutions at low temperatures. Cytochrome C , 1974, FEBS letters.

[538]  D. Jerina,et al.  Arene oxides: a new aspect of drug metabolism. , 1974, Science.

[539]  W. Robinson,et al.  Structure of an iron(II) dioxygen complex; a model for oxygen carrying hemeproteins. , 1974, Proceedings of the National Academy of Sciences of the United States of America.

[540]  T. Traylor,et al.  Proximal base influence on the binding of oxygen and carbon monoxide to heme. , 1974, Journal of the American Chemical Society.

[541]  F. Hirata,et al.  In vitro and in vivo formation of two new metabolites of melatonin. , 1974, The Journal of biological chemistry.

[542]  T. Spiro,et al.  Resonance Raman spectra of heme proteins. Effects of oxidation and spin state. , 1974, Journal of the American Chemical Society.

[543]  I. Salmeen,et al.  The valence and spin state of iron in oxyhemoglobin as inferred from resonance Raman spectroscopy. , 1973, The Journal of biological chemistry.

[544]  T. Yonetani,et al.  Oxidation of cytochrome c peroxidase with hydrogen peroxide: identification of the "endogenous donor". , 1972, Biochemical and biophysical research communications.

[545]  B. Griffin,et al.  Pseudomonas putida cytochrome P-450: characterization of an oxygenated form of the hemoprotein. , 1972, Archives of biochemistry and biophysics.

[546]  D. Dolphin,et al.  Compounds I of catalase and horse radish peroxidase: pi-cation radicals. , 1971, Proceedings of the National Academy of Sciences of the United States of America.

[547]  H. Dunford,et al.  Kinetics of the oxidation of ferrocyanide by horseradish peroxidase compounds I and II. , 1970, Biochemistry.

[548]  D. Jerina,et al.  1,2-naphthalene oxide as an intermediate in the microsomal hydroxylation of naphthalene. , 1970, Biochemistry.

[549]  R. Breslow,et al.  pK.alpha. of triphenylcyclopropene. Electrochemical determination of an inaccessible equilibrium constant , 1969 .

[550]  O. Hayaishi,et al.  Tryptophan pyrrolase of rabbit intestine. D- and L-tryptophan-cleaving enzyme or enzymes. , 1967, The Journal of biological chemistry.

[551]  L. Pauling,et al.  Nature of the Iron–Oxygen Bond in Oxyhæmoglobin , 1964, Nature.

[552]  O. Hayaishi,et al.  Studies on oxygenases; enzymatic formation of kynurenine from tryptophan. , 1957, The Journal of biological chemistry.

[553]  D. Keilin,et al.  On the Haematin Compound of Peroxidase , 1937 .

[554]  K. Stern ON THE MECHANISM OF ENZYME ACTION A STUDY OF THE DECOMPOSITION OF MONOETHYL HYDROGEN PEROXIDE BY CATALASE AND OF AN INTERMEDIATE ENZYME-SUBSTRATE COMPOUND , 1936 .

[555]  C. D. Coryell,et al.  The Magnetic Properties and Structure of Hemoglobin, Oxyhemoglobin and Carbonmonoxyhemoglobin , 1936, Proceedings of the National Academy of Sciences.

[556]  Richard M. Badger,et al.  The Relation Between the Internuclear Distances and Force Constants of Molecules and Its Application to Polyatomic Molecules , 1935 .

[557]  M. Salamone,et al.  Tuning Reactivity and Selectivity in Hydrogen Atom Transfer from Aliphatic C—H Bonds to Alkoxyl Radicals: Role of Structural and Medium Effects , 2016 .

[558]  R. Eldik,et al.  Redox cycling in the activation of peroxides by iron porphyrin and manganese complexes. ‘Catching’ catalytic active intermediates , 2016 .

[559]  P. Kroneck,et al.  Sustaining Life on Planet Earth: Metalloenzymes Mastering Dioxygen and Other Chewy Gases , 2015, Metal Ions in Life Sciences.

[560]  C. Jung The mystery of cytochrome P450 Compound I: a mini-review dedicated to Klaus Ruckpaul. , 2011, Biochimica et biophysica acta.

[561]  S. Shaik,et al.  Exchange-enhanced reactivity in bond activation by metal-oxo enzymes and synthetic reagents. , 2011, Nature chemistry.

[562]  S. Formosinho,et al.  Proton-coupled electron transfer : a carrefour of chemical reactivity traditions , 2011 .

[563]  W. Thiel,et al.  Water as biocatalyst in cytochrome P450. , 2011, Faraday discussions.

[564]  S. D. de Visser Trends in substrate hydroxylation reactions by heme and nonheme iron(IV)-oxo oxidants give correlations between intrinsic properties of the oxidant with barrier height. , 2010, Journal of the American Chemical Society.

[565]  P. Ortiz de Montellano,et al.  Hydrocarbon hydroxylation by cytochrome P450 enzymes. , 2010, Chemical reviews.

[566]  S. Shaik,et al.  Valence bond modelling and density functional theory calculations of reactivity and mechanism of cytochrome P450 enzymes: thioether sulfoxidation , 2010 .

[567]  A. Tsai,et al.  Prostaglandin H synthase: resolved and unresolved mechanistic issues. , 2010, Archives of biochemistry and biophysics.

[568]  J. Barber Photosynthetic energy conversion: natural and artificial. , 2009, Chemical Society reviews.

[569]  P. R. Gardner Nitric oxide dioxygenase function and mechanism of flavohemoglobin, hemoglobin, myoglobin and their associated reductases. , 2005, Journal of inorganic biochemistry.

[570]  F. Tani,et al.  Characterization of a dinuclear MnV=O complex and is efficient evolution of O2 in the presence of water. , 2004, Angewandte Chemie.

[571]  P. Ortiz de Montellano,et al.  Oxidizing species in the mechanism of cytochrome P450. , 2002, Natural product reports.

[572]  S. Sligar,et al.  Cryoradiolysis for the study of P450 reaction intermediates. , 2002, Methods in enzymology.

[573]  A. Y. Lu,et al.  Kinetic Isotope Effects on Cytochrome P-450-catalyzed Oxidation Reactions , 2001 .

[574]  So-Hye Cho,et al.  Use of 2-methyl-1-phenylpropan-2-yl hydroperoxide (MPPH) as a mechanistic probe for the heterolytic versus homolytic O–O bond cleavage of tert-alkyl hydroperoxide by iron(III) porphyrin complex , 1999 .

[575]  R. Dyer,et al.  Cyanide binding and active site structure in heme-copper oxidases: normal coordinate analysis of iron-cyanide vibrations of a3(2+)CN- complexes of cytochromes ba3 and aa3. , 1998, Biospectroscopy.

[576]  E. Berenshtein,et al.  The “Push-Pull Mechanism” , 1998 .

[577]  J. Groves,et al.  Peroxynitrite-Induced DNA Strand Scission Mediated by a Manganese Porphyrin , 1995 .

[578]  D. Kessissoglou Bioinorganic chemistry : an inorganic perspective of life , 1995 .

[579]  H. Sakurai,et al.  Optical absorption and EPR studies on a six-coordinate iron(III)–tetramesitylporphyrin–hydrogen peroxide complex having a nitrogenous axial ligand , 1995 .

[580]  C. Che,et al.  Kinetics of C–H bond and alkene oxidation by trans-dioxoruthenium(VI) porphyrins , 1991 .

[581]  J. Groves,et al.  Evidence for a weak Mn=O bond and a non-porphyrin radical in manganese-substituted horseradish peroxidase compound I , 1991 .

[582]  F. Guengerich Enzymatic oxidation of xenobiotic chemicals. , 1990, Critical reviews in biochemistry and molecular biology.

[583]  M. Shigematsu,et al.  Generation of FeIIIOEP-hydrogen peroxide complex (OEP = octaethylporphyrinato) by reduction of FeIIOEP–O2 with ascorbic acid sodium salt , 1990 .

[584]  A. Khenkin,et al.  The contribution of tunnelling to high values of kinetic isotope effect in aliphatic hydroxylation by a cytochrome P-450 model , 1990 .

[585]  J. I. Brauman,et al.  Reversible binding of dinitrogen and dioxygen by a ruthenium picnic-basket porphyrin , 1988 .

[586]  John T. Groves,et al.  Reactive iron porphyrin derivatives related to the catalytic cycles of cytochrome P-450 and peroxidase. Studies of the mechanism of oxygen activation , 1988 .

[587]  J. Groves,et al.  Oxomanganese(IV) porphyrins identified by resonance Raman and infrared spectroscopy. Weak bonds and the stability of the half-filled t2g subshell , 1988 .

[588]  N. Kurihara,et al.  Deuterium and Tritium Isotope Effects on the Oxidative Demethylation Rate of Methoxychior in Rat Liver Microsomes , 1986 .

[589]  T. C. Bruice,et al.  Homolytic and heterolytic oxygen−oxygen bond scissions accompanying oxygen transfer to iron(III) porphyrins by percarboxylic acids and hydroperoxides. A mechanistic criterion for peroxidase and cytochrome P-450 , 1985 .

[590]  J. Groves,et al.  Hydroxylation by cytochrome P-450 and metalloporphyrin models: evidence for allylic rearrangement , 1984 .

[591]  L. Blumenfeld,et al.  Studies on the conformational changes of metalloproteins induced by electrons in water—ethyleneglycol solutions at low temperatures. Haemoglobin , 1974, FEBS letters.

[592]  G. Lang,et al.  Mössbauer effect in some haemoglobin compounds. , 1966, Journal of molecular biology.

[593]  Donald S. McClure,et al.  Electronic Structure of Transition-Metal Complex Ions , 1960 .

[594]  Britton Chance,et al.  An Intermediate Compound in the Catalase-hydrogen peroxide Reaction. , 1947 .

[595]  M. G. Evans,et al.  Inertia and driving force of chemical reactions , 1938 .