Chan et al., 1983 - Google Patents
The structure of the metal centers in cytochrome c oxidaseChan et al., 1983
- Document ID
- 3016290403048967268
- Author
- Chan S
- Martin C
- Wang H
- Brudvig G
- Stevens T
- Publication year
- Publication venue
- The Coordination Chemistry of Metalloenzymes: The Role of Metals in Reactions Involving Water, Dioxygen and Related Species Proceedings of the NATO Advanced Study Institute held at San Miniato, Pisa, Italy, May 28–June 8, 1982
External Links
Snippet
Progress toward elucidation of the structure of the metal centers in cytochrome c oxidase will be reviewed. Our studies are based on low-temperature electron paramagnetic resonance (EPR) spectroscopy. We have used nitric oxide (NO) extensively to probe the O 2 reduction …
- 229910052751 metal 0 title abstract description 22
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Solomon et al. | Multicopper oxidases and oxygenases | |
Hunt et al. | Heme-nitrosyls: electronic structure implications for function in biology | |
Stemmler et al. | The preparation, characterization, and magnetism of copper 15-metallacrown-5 lanthanide complexes | |
Stevens et al. | Structure of cytochrome a3-Cua3 couple in cytochrome c oxidase as revealed by nitric oxide binding studies. | |
Beinert | Copper A of Cytochrome c Oxidase, A Novel, Long‐Embattled, Biological Electron‐Transfer Site | |
Lynch et al. | Mössbauer and EPR studies of the binuclear iron center in ribonucleotide reductase from Escherichia coli: A new iron-to-protein stoichiometry | |
Vincent et al. | Proteins containing oxo-bridged dinuclear iron centers: a bioinorganic perspective | |
Brudvig et al. | Bioinorganic chemistry of manganese related to photosynthetic oxygen evolution | |
Munro et al. | Heme− peptide models for hemoproteins. 1. Solution chemistry of N-acetylmicroperoxidase-8 | |
Sahlin et al. | Reduced forms of the iron-containing small subunit of ribonucleotide reductase from Escherichia coli | |
Holm et al. | Synthetic analogues of the active sites of iron-sulfur proteins | |
Hamachi et al. | Enhanced N-demethylase activity of cytochrome c bound to a phosphate-bearing synthetic bilayer membrane | |
Jodts et al. | Coordination of the copper centers in particulate methane monooxygenase: Comparison between methanotrophs and characterization of the CuC site by EPR and ENDOR spectroscopies | |
Ye et al. | Cryoreduction of the NO-adduct of taurine: α-ketoglutarate dioxygenase (TauD) yields an elusive {FeNO} 8 species | |
Hosler et al. | Analysis of site-directed mutants locates a non-redox-active metal near the active site of cytochrome c oxidase of Rhodobacter sphaeroides | |
Hilton et al. | The ferroxidase center is essential for ferritin iron loading in the presence of phosphate and minimizes side reactions that form Fe (III)-phosphate colloids | |
Tabbi et al. | The copper (II) binding centres of carbonic anhydrase are differently affected by reductants that ensure the redox intracellular environment | |
Karbalaei et al. | A Macrocyclic Ligand Framework That Improves Both the Stability and T 1-Weighted MRI Response of Quinol-Containing H2O2 Sensors | |
Balch | Coordination chemistry with meso-hydroxylated porphyrins (oxophlorins), intermediates in heme degradation | |
Que et al. | NMR Studies of Magnetically Coupled Metalloproteins | |
Musci et al. | The state of the copper sites in human ceruloplasmin | |
Andersson et al. | Ion binding to cytochrome c studied by nuclear magnetic quadrupole relaxation | |
Blinc et al. | 14N quadrupole resonance in polyglycine | |
Jones et al. | Rapid Decay of the Native Intermediate in the Metallooxidase Fet3p Enables Controlled FeII Oxidation for Efficient Metabolism | |
Ehrenberg et al. | Magnetic measurements on crystallized Fetransferrin isolated from the blood plasma of swine |