Biomedical EPR, Part A: Free Radicals, Metals, Medicine, and by Helmut Beinert (auth.), Sandra R. Eaton, Gareth R. Eaton,

By Helmut Beinert (auth.), Sandra R. Eaton, Gareth R. Eaton, Lawrence J. Berliner (eds.)

Biomedical EPR – half A makes a speciality of functions of EPR spectroscopy within the parts of unfastened radicals, metals, medication, and body structure. The booklet celebrates the 70th birthday of Prof. James S. Hyde, clinical collage of Wisconsin, and his contributions to this box. Chapters are written to supply introductory fabric for new-comers to the sphere which lead into updated stories that offer point of view at the wide variety of questions that may be addressed via EPR.

Key Features:
Free Radicals in drugs

Radicals in vivo and in version platforms, and their research via Spin Trapping

In vivo EPR, together with Oximetry and Imaging

Time area EPR at Radio Frequencies

EPR of Copper Complexes: movement and Frequency Dependence

Time area EPR and Electron Spin Echo Envelope Modulation

About the Editors:

Prof. Sandra S. Eaton is John Evans Professor within the division of Chemistry and Biochemistry on the collage of Denver. Her examine pursuits contain distance measurements in proteins, EPR of steel ions in organic platforms, electron spin rest instances, and EPR instrumentation. The Eatons co-organize an annual EPR Symposium in Denver.

Prof. Gareth R. Eaton is John Evans Professor within the division of Chemistry and Biochemistry on the collage of Denver. His learn pursuits contain EPR instrumentation, distance measurements in proteins, EPR of steel ions in organic structures, and electron spin leisure instances.

Dr. Lawrence J. Berliner is at the moment Professor and Chair of the dept of Chemistry and Biochemistry on the college of Denver after retiring from Ohio country collage, the place he spent a 32-year occupation within the region of organic magnetic resonance (EPR and NMR). he's the sequence Editor for organic Magnetic Resonance, which he introduced in 1979.

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Additional info for Biomedical EPR, Part A: Free Radicals, Metals, Medicine, and Physiology

Example text

59‚ 1352-1356. Hyde‚ J. ‚ Rist‚ G. ‚ and Eriksson‚ L. E. G. (1968). ENDOR of methyl‚ matrix and protons in amorphous and polycrystalline matrices‚ J. Phys. Chem. 72‚ 4269-4276. Lesniewski‚ P. and Hyde‚ J. S. (1990). Phase noise reduction of a 19 GHz veractor-tuned Gunn oscillator for electron paramagnetic resonance spectroscopy. Rev. Sci. Instrum. 61‚ 2248-2250. M. (1976). Ion-exchange in melanin: and electron spin resonance study with lanthanide probes‚ Science 192‚ 1132-1134. Thomas‚ D. ‚ Seidel‚ J.

Chem. Phys. 40‚ 3117-3118. ‚ and Ehrenberg‚ A. (1970). EPR relaxation of slowly moving flavin radicals: “anomalous” saturation‚ Biochim. Biophys. Acta 222‚ 688-692. Hyde‚ J. S. and Gajdzinski‚ J. (1988). EPR automatic frequency control circuit with field effect transistor (FET) microwave amplification. Rev. Sci. Instrum. 59‚ 1352-1356. Hyde‚ J. ‚ Rist‚ G. ‚ and Eriksson‚ L. E. G. (1968). ENDOR of methyl‚ matrix and protons in amorphous and polycrystalline matrices‚ J. Phys. Chem. 72‚ 4269-4276.

On the other hand‚ the studies on melanin have persisted and developed into important new areas of research that are one of the major strengths of the Center. The initial studies with melanins took advantage of the fact that melanin contains a number of stable free radicals that provide excellent tools for understanding the interactions of this complex molecule‚ mostly by serving as probe molecules to follow biophysical parameters but also with some important aspects of chemical reactivity. From the beginning‚ the experiments with melanin involved close collaborations with colleagues from the Jagiellonian University in Krakow‚ Poland.

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