[No authors listed]
MicroRNAs (miRs) are a class of important regulators, which are involved in the regulation of apoptosis. Oxidative stressâinduced apoptosis is the predominant factor accounting for cardiac ischemiaâreperfusion injury. miRâ153 has been previously shown to have an antitumor effect in cancer. However, whether miRâ153 is involved in oxidative stressâinduced apoptosis in the heart remains to be elucidated. To this end, the present study used reverse transcriptionâquantitative polymerase chain reaction to detect miR-153 levels upon oxidative stress, and evaluated apoptosis, autophagy and expression of critical genes by western blotting. A luciferase assay was also used to confirm the potential target gene. In the present study, it was found that the expression of miRâ153 was significantly increased upon H2O2 stimulation, and the inhibition of endogenous miRâ153 decreased apoptosis. To further identify the mechanism underlying the proâapoptotic effect of miRâ153, the present study analyzed the 3'untranslated region of myeloid cell leukemiaâ1 (Mclâ1), and found that Mclâ1 was potentially targeted by miRâ153. The forced expression of miRâ153 inhibited the expression of Mclâ1 and luciferase activity, which was reversed by its antisense inhibitor. Furthermore, it was shown that the inhibition of miRâ153 induced autophagy during oxidative stress, and that its effects of autophagy induction and apoptosis inhibition were efficiently abrogated by Mclâ1 small interfering RNA. In conclusion, the results of the present study elucidated a novel mechanism by which miRâ153 regulates the survival of cardimyocytes during oxidative stress through the modulation of apoptosis and autophagy. These effects may be mediated directly by targeting Mclâ1. These finding revealed the potential clinical value of miRâ153 in the treatment of cardiovascular disease.
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