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Molybdenum metabolism in plants and crosstalk to ironMechanistic insights into xanthine oxidoreductase from development studies of candidate drugs to treat hyperuricemia and goutStructural basis of thermal stability of the tungsten cofactor synthesis protein MoaB from Pyrococcus furiosusStructural basis of enzymatic benzene ring reductionMechanisms of nitrite bioactivationOxocomplexes of Mo(VI) and W(VI) with 8-hydroxyquinoline-5-sulfonate in solution: structural studies and the effect of the metal ion on the photophysical behaviour.Iron chaperones PCBP1 and PCBP2 mediate the metallation of the dinuclear iron enzyme deoxyhypusine hydroxylase.Archaeal Mo-Containing Glyceraldehyde Oxidoreductase Isozymes Exhibit Diverse Substrate Specificities through Unique Subunit Assemblies.Electrochemical evidence that pyranopterin redox chemistry controls the catalysis of YedY, a mononuclear Mo enzyme.A Model for the Active-Site Formation Process in DMSO Reductase Family Molybdenum Enzymes Involving Oxido-Alcoholato and Oxido-Thiolato Molybdenum(VI) Core Structures.YedY: A Mononuclear Molybdenum Enzyme with a Redox-Active Ligand?TusA (YhhP) and IscS are required for molybdenum cofactor-dependent base-analog detoxification.Oxo-carboxylato-molybdenum(VI) complexes possessing dithiolene ligands related to the active site of type II DMSOR family molybdoenzymes.Structural and functional models in molybdenum and tungsten bioinorganic chemistry: description of selected model complexes, present scenario and possible future scopes.Shifting the metallocentric molybdoenzyme paradigm: the importance of pyranopterin coordination.Electronic structure contributions to reactivity in xanthine oxidase family enzymes.Molybdenum and tungsten-dependent formate dehydrogenases.Nitrite reduction by molybdoenzymes: a new class of nitric oxide-forming nitrite reductases.Bioinorganic modeling chemistry of carbon monoxide dehydrogenases: description of model complexes, current status and possible future scopes.The reductive half-reaction of xanthine dehydrogenase from Rhodobacter capsulatus: the role of Glu232 in catalysis.Activation of molecular oxygen by a molybdenum complex for catalytic oxidation.Acid-facilitated product release from a Mo(IV) center: relevance to oxygen atom transfer reactivity of molybdenum oxotransferases.Mechanisms of Oxygen Atom Transfer between Main-Group Elements
P2860
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P2860
description
2013 nî lūn-bûn
@nan
2013 թուականի Յունուարին հրատարակուած գիտական յօդուած
@hyw
2013 թվականի հունվարին հրատարակված գիտական հոդված
@hy
2013年の論文
@ja
2013年学术文章
@wuu
2013年学术文章
@zh-cn
2013年学术文章
@zh-hans
2013年学术文章
@zh-my
2013年学术文章
@zh-sg
2013年學術文章
@yue
name
The molybdenum oxotransferases and related enzymes.
@ast
The molybdenum oxotransferases and related enzymes.
@en
type
label
The molybdenum oxotransferases and related enzymes.
@ast
The molybdenum oxotransferases and related enzymes.
@en
prefLabel
The molybdenum oxotransferases and related enzymes.
@ast
The molybdenum oxotransferases and related enzymes.
@en
P2860
P356
P1433
P1476
The molybdenum oxotransferases and related enzymes.
@en
P2093
Russ Hille
P2860
P304
P356
10.1039/C2DT32376A
P407
P577
2013-01-15T00:00:00Z