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The Biochemical Journal|May 1, 1987
Ferrous-salt-promoted damage to deoxyribose and benzoate. The increased effectiveness of hydroxyl-radical scavengers in the presence of EDTAJ M GutteridgeFEBS Letters|June 27, 1983
Antioxidant properties of caeruloplasmin towards iron- and copper-dependent oxygen radical formationJ M GutteridgeThe International Journal of Biochemistry|January 1, 1982
Free-radical damage to lipids, amino acids, carbohydrates and nucleic acids determined by thiobarbituric acid reactivityJ M GutteridgeFEBS Letters|June 3, 1985
Superoxide dismutase inhibits the superoxide-driven Fenton reaction at two different levels. Implications for a wider protective roleJ M GutteridgeChemico-Biological Interactions|December 17, 1985
Inhibition of the Fenton reaction by the protein caeruloplasmin and other copper complexes. Assessment of ferroxidase and radical scavenging activitiesJ M GutteridgeClinical Science (London, England : 1979)|March 1, 1992
Ferrous ions detected in cerebrospinal fluid by using bleomycin and DNA damageJ M GutteridgeRedox Report : Communications in Free Radical Research|November 30, 1999
Does redox regulation of cell function explain why antioxidants perform so poorly as therapeutic agents?J M GutteridgeThe Biochemical Journal|December 15, 1984
Ferrous ion-EDTA-stimulated phospholipid peroxidation. A reaction changing from alkoxyl-radical- to hydroxyl-radical-dependent initiationJ M GutteridgeFEBS Letters|July 9, 1984
Lipid peroxidation initiated by superoxide-dependent hydroxyl radicals using complexed iron and hydrogen peroxideJ M GutteridgeFEBS Letters|June 9, 1986
Iron promoters of the Fenton reaction and lipid peroxidation can be released from haemoglobin by peroxidesJ M GutteridgePageof 17