[No authors listed]
Melatonin (Mel) elicits beneficial effects on myocardial ischemia/reperfusion injury. However, the underlying mechanism of Mel against oxygenâglucose deprivation/reperfusion (OGD/R)âinduced H9c2 cardiomyocyte damage remains largely unknown. The aim of the present study was to investigate the biological roles and the potential mechanisms of Mel in OGD/Râexposed H9c2 cardiomyocytes. The results of the present study demonstrated that Mel significantly elevated the viability and reduced the activity of lactate dehydrogenase and creatine kinase myocardial band in a doseâ and timeâdependent manner in OGD/Râinsulted H9c2 cells. In addition, Mel suppressed OGD/Râinduced oxidative stress in H9c2 cells, as demonstrated by the decreased reactive oxygen species and malondialdehyde levels, as well as the increased activities of superoxide dismutase, catalase and glutathione peroxidase. Mel exerted an antioxidant effect by activating the peroxisome proliferatorâactivated receptor gamma coactivatorâ1α (PGCâ1α)/nuclear factor erythroid 2ârelated factor 2 (Nrf2) signaling. Mel reduced the expression of OGD/Râenhanced proâinflammatory tumor necrosis factorâα (TNFâα), interleukin (IL)â6, ILâ1β, ILâ8 and monocyte chemotactic proteinâ1. Mel also abolished the OGD/Râinduced increase in H9c2 apoptosis, as evidenced by mitochondrial membrane potential restoration and caspaseâ3 and caspaseâ9 inactivation, as well as the upregulation of Bclâ2 and downregulation of cleaved caspaseâ3 and Bax. The Melâinduced antiapoptotic effects were dependent on PGCâ1α/TNFâα signaling. Overall, the results of the present study demonstrated that Mel alleviated OGD/Râinduced H9c2 cell injury via the inhibition of oxidative stress and inflammation by regulating the PGCâ1α/Nrf2 and PGCâ1α/TNFâα signaling pathways, suggesting a promising role for Mel in the treatment of ischemic heart disease.
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