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The Journal of Biological Chemistry|June 24, 1994
Superoxide-dependent hydroxylation by myeloperoxidaseA J Kettle, C C WinterbournArchives of Biochemistry and Biophysics|November 15, 1984
Chelated iron-catalyzed OH. formation from paraquat radicals and H2O2: mechanism of formate oxidationH C Sutton, C C WinterbournFree Radical Biology & Medicine|December 13, 2005
Taurine chloramine is more selective than hypochlorous acid at targeting critical cysteines and inactivating creatine kinase and glyceraldehyde-3-phosphate dehydrogenaseAlexander V Peskin, Christine C WinterbournCancer Chemotherapy and Pharmacology|January 1, 1989
Microsomal lipid peroxidation induced by adriamycin, epirubicin, daunorubicin and mitoxantrone: a comparative studyG F Vile, C C WinterbournThe Biochemical Journal|March 1, 1988
Susceptibilities of lactoferrin and transferrin to myeloperoxidase-dependent loss of iron-binding capacityC C Winterbourn, A L MolloyArchives of Biochemistry and Biophysics|March 1, 1991
Oxidative damage to fibronectin. II. The effect of H2O2 and the hydroxyl radicalM C Vissers, C C WinterbournBiochemical and Biophysical Research Communications|May 24, 2003
Radical-radical reactions of superoxide: a potential route to toxicityChristine C Winterbourn, Anthony J KettleThe Journal of Biological Chemistry|April 25, 1992
Oxidation of hydroquinone by myeloperoxidase. Mechanism of stimulation by benzoquinoneA J Kettle, C C WinterbournFEBS Letters|May 4, 1987
Iron binding to microsomes and liposomes in relation to lipid peroxidationG F Vile, C C WinterbournJournal of Immunological Methods|January 5, 2000
Methods for quantifying phagocytosis and bacterial killing by human neutrophilsM B Hampton, C C WinterbournPageof 31