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005 20160429154431.0
007 cr nn 008mamaa
008 150903s2010 xxu| o |||| 0|eng d
020 _a9781441911391
_99781441911391
024 7 _a10.1007/9781441911391
_2doi
035 _avtls000338207
039 9 _a201509030811
_bVLOAD
_c201404300341
_dVLOAD
_y201402060904
_zstaff
040 _aMX-SnUAN
_bspa
_cMX-SnUAN
_erda
050 4 _aR-RZ
100 1 _aHanson, Graeme.
_eeditor.
_9303772
245 1 0 _aMetals in Biology :
_bApplications of High-Resolution EPR to Metalloenzymes /
_cedited by Graeme Hanson, Lawrence Berliner.
264 1 _aNew York, NY :
_bSpringer New York,
_c2010.
300 _axIx, 419 páginas
_brecurso en línea.
336 _atexto
_btxt
_2rdacontent
337 _acomputadora
_bc
_2rdamedia
338 _arecurso en línea
_bcr
_2rdacarrier
347 _aarchivo de texto
_bPDF
_2rda
490 0 _aBiological Magnetic Resonance,
_x0192-6020 ;
_v29
500 _aSpringer eBooks
505 0 _aIRON–SULFUR-CONTAINING PROTEINS -- Electron Magnetic Resonance of Iron–Sulfur Proteins in Electron-Transfer Chains: Resolving Complexity -- Catalysis and Gene Regulation -- Iron–Sulfur Clusters in “Radical SAM” Enzymes: Spectroscopy and Coordination -- MONONUCLEAR MOLYBDENUM ENZYMES -- EPR Studies of Xanthine Oxidoreductase and Other Molybdenum-Containing Hydroxylases -- High-Resolution EPR Spectroscopy of Mo Enzymes. Sulfite Oxidases: Structural and Functional Implications -- Dimethylsulfoxide (DMSO) Reductase, a Member of the DMSO Reductase Family of Molybdenum Enzymes -- MANGANESE-CONTAINING ENZYMES -- The Manganese-Calcium Cluster of the Oxygen-Evolving System: Synthetic Models, EPR Studies, and Electronic Structure Calculations -- Manganese Metalloproteins -- NOVEL METALLOENZYMES AND METALLOPROTEINS -- EPR of Cobalt-Substituted Zinc Enzymes -- Hyperfine and Quadrupolar Interactions in Vanadyl Proteins and Model Complexes: Theory and Experiment.
520 _aMetals in Biology Applications of High Resolution EPR to Metalloenzymes Prof. Graeme R. Hanson, University of Queensland and Prof. Lawrence J. Berliner, University of Denver Metal ions in biology is an ever expanding area in science and medicine involving metal ions in proteins and enzymes, their biosynthesis, catalysis, electron transfer, metal ion trafficking, gene regulation and disease. While X-ray crystallography has provided snapshots of the geometric structures of the active site redox cofactors in these proteins, the application of high resolution EPR spectroscopy in conjunction with quantum chemistry calculations has enabled, in many cases, a detailed understanding of a metalloenzymes mechanism through investigations of the geometric and electronic structure of the resting, enzyme-substrate intermediates and product complexes. This volume, Part II of a two-volume set demonstrates the application of high resolution EPR spectroscopy in determining the geometric and electronic structure of active site metal ion centers in iron sulfur cluster containing metalloproteins, mononuclear molybdenum metalloenzymes, manganese-containing enzymes and novel metalloproteins. The following chapters, written by experts in their fields, include: An Introduction: John Pilbrow Electron Magnetic Resonance of Iron-sulfur Proteins in Electron Transfer Chains - Resolving Complexity: Richard Cammack, Fraser MacMillan Catalysis and Gene Regulation: Helmut Beinert Iron Sulfur Clusters in Radical SAM Enzymes: Spectroscopy and Coordination: Serge Gambarelli, Etienne Mulliez, Marc Fontecave EPR Studies of Xanthine Oxidoreductase and Other Molybdenum-containing Hydroxylases: Russ Hille High Resolution EPR Spectroscopy of Mo-enzymes. Sulfite Oxidases: Structural and Functional Implications: John Enemark, Andrei Astashkin, Arnold Raitsimring Dimethylsulfoxide (DMSO) Reductase, a Member of the DMSO Reductase Family of Molybdenum Enzymes: Graeme Hanson, Ian Lane The Manganese-Calcium Cluster of the Oxygen Evolving System: Synthetic Models, EPR Studies, and Electronic Structure Calculations: Marcin Brynda, David Britt Binuclear Manganese-dependent enzymes: Sarah Smith, Kieran Hadler, Gerhard Schenk, Graeme Hanson, Nataša Mitic EPR of Cobalt-Substituted Zinc Enzymes: Brian Bennett Hyperfine and Quadrupolar Interactions in Vanadyl Protein and Model Complexes. Theory and Experiment: Sarah Larsen, Dennis Chasteen
590 _aPara consulta fuera de la UANL se requiere clave de acceso remoto.
700 1 _aBerliner, Lawrence.
_eeditor.
_9299567
710 2 _aSpringerLink (Servicio en línea)
_9299170
776 0 8 _iEdición impresa:
_z9781441911384
856 4 0 _uhttp://remoto.dgb.uanl.mx/login?url=http://dx.doi.org/10.1007/978-1-4419-1139-1
_zConectar a Springer E-Books (Para consulta externa se requiere previa autentificación en Biblioteca Digital UANL)
942 _c14
999 _c285912
_d285912