[No authors listed]
Hypoxia/reoxygenation (H/R) is used as an in vivo model of ischemia/reperfusion injury, and myocardial ischemia can lead to heart disease. Therefore, it is necessary to prevent myocardial H/R injury to avoid the risk of heart disease. The aim of the present study was to investigate whether inhibiting microRNA (miR)â101aâ3p attenuated H9C2 cell H/R injury, apoptosis mechanisms and key target proteins. Cell viability and apoptosis were determined by Cell Counting Kitâ8 assays and flow cytometry using a cell apoptosis kit, respectively. The contents of creatine kinase (CK) and lactate dehydrogenase (LDH) were detected using colorimetric assays. Dual luciferase assays were carried out to determine if miRâ101aâ3p inhibited Janus kinase (JAK)2. Western blot analysis and reverse transcriptionâquantitative PCR were used to determine proteins levels and mRNAs expression. It was found that the inhibition of miRâ101aâ3p increased the growth of H9C2 cells and decreased H9C2 cell apoptosis during H/R injury. The inhibition of miRâ101aâ3p reduced the amounts of CK and LDH in H/R model H9C2 cells. The inhibition of miRâ101aâ3p lowered the levels of Bax, interleukinâ6 and tumor necrosis factorâα, but raised the levels of phosphorylated and pâJAK2 in H9C2 cells subjected to H/R injury treatment. miRâ101aâ3p mimic was found to inhibit H9C2 cell viability, raise pâJAK2 level and slightly increase during H/R injury. AG490 induced H9C2 cell apoptosis, and decreased the levels of pâJAK2 and pâduanyu18133 during H/R injury. The data indicated that inhibiting miRâ101aâ3p reduced H/R damage in H9C2 cells and decreased apoptosis via Bax/Bclâ2 signaling during H/R injury. In addition, it was suggested that the inhibition of miRâ101aâ3p decreased H/R injury in H9C2 cell by regulating the signaling pathway.
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