Key result
Hydrogen peroxide cytotoxicity in cultured cardiac myocytes requires reactions catalyzed by intracellular iron, as injury was markedly reduced by the iron chelator deferoxamine.
Hydrogen peroxide-induced cytotoxicity in cardiac myocytes requires reactions catalyzed by intracellular iron, providing mechanistic insight into myocardial ischemia and reperfusion injury.
Hypothesis-generating for iron chelation in reperfusion injury; leaves open translation to intact hearts or patients.
Because of its potential importance in injury during myocardial ischemia and reperfusion, we assessed mechanisms of hydrogen peroxide (H2O2) cytotoxicity in cultured chick embryo cardiac myocytes. Injury was quantitated by release of lactate dehydrogenase (LDH) or 51Cr, both of which correlated with loss of cell viability assessed by trypan blue exclusion. The iron chelator deferoxamine (0.25-2 mM), but not equimolar iron-loaded deferoxamine, markedly reduced LDH and 51Cr release. Injury was also prevented or attenuated by the diffusible reactive oxygen metabolite scavengers dimethylthiourea (10-20 mM) and N-(2-mercaptopropionyl)-glycine (20 mM). The hydroxyl radical scavenger, dimethyl sulfoxide (200-400 mM), also reduced injury. Other scavengers that probably remained extracellular, superoxide dismutase and mannitol, were ineffective. Thus, with exposure of cardiac myocytes to H2O2, cytotoxicity requires reactions catalyzed by intracellular iron.
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Byler et al. (1994) studied Myocardial ischemia and reperfusion injury (in vitro model). Hydrogen peroxide (H2O2) and iron chelators/scavengers vs. Equimolar iron-loaded deferoxamine, superoxide dismutase, mannitol was evaluated on Cytotoxicity quantitated by release of lactate dehydrogenase (LDH) or 51Cr. Hydrogen peroxide cytotoxicity in cultured cardiac myocytes requires reactions catalyzed by intracellular iron, as injury was markedly reduced by the iron chelator deferoxamine.
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