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Titlebook: Analysis of Free Radicals in Biological Systems; A. E. Favier,J. Cadet,J.-L. Pierre Book 1995 Springer Basel AG 1995 DNA.Lipid.Oxidation.P

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Probleme der Digitalisintoxikation,ssified into six categories: chemical and xenobiotic toxicity, radiation injury, hyperoxygenation syndromes, inflammatory conditions, postischemic reperfusion injury and degenerative conditions. As their . evidence always remains a difficult challenge, there is, however, a great deal of confusion ab
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Tatiana Porté,Gil Regev,Alain Wegmann the ascorbate free radical that is easily detectable by electron paramagnetic resonance (EPR). even in room temperature aqueous solution. The ascorbate radical has a relatively long lifetime compared to other free radicals, such as hydroxyl, peroxyl, and carbon-centered lipid radicals. This longer
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Linn Slettum Bjerke-Busch,Arild Aspelundorganized assemblies. Such degeneration typically occurs under conditions of oxidative stress. Since LOOHs are subject to rapid turnover in the presence of peroxidases, reductants, or metal ions, their levels may be very low and difficult to measure in complex systems such as peroxidizing cells or l
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https://doi.org/10.1007/978-3-030-69380-0ations involving biological samples the lipid hydroperoxides are degraded to a variety of products including alkanals, alkenals, hydroxyalkenals, ketones, alkanes. Although attack by singlet oxygen on unsaturated lipid has been shown to give hydroperoxides by a nonradical process, the vast majority
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Birte Malzahn,Jessica Slamka,Daniela Scheidensity lipoprotein oxidizability can be determined . by several methods. We describe here a rapid method for the isolation of low-density lipoprotein by density gradient ultracentrifugation. Cu. -catalyzed oxidation of low-density lipoprotein is then performed and the rate of conjugated diene format
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