| Literature DB >> 31555385 |
Zhanjun Qiu1,2,3,4,5, Lei Wang2, Huaiyu Mao6, Feng Xu1,3,4,5, Bin Sun7, Xinbao Lian2, Jiali Wang1,3,4,5, Feng Kong8, Lina Wang9, Yuguo Chen1,3,4,5.
Abstract
Myocardial infarction, one of the main factors that threatens human health, leads to cardiac cell death. Myocardial cells suffer ischemia and hypoxia for a long period of time, which can lead to irreversible cell death or apoptosis and cardiac dysfunction. MicroRNAs (miRs) have been reported to play an important role in a wide range of biological processes in cardiac myocytes, which respond to inflammation and oxidative stress. The aim of the present study was to investigate the effect of miR-370 on oxidative stress and apoptosis of cardiac myocytes in ischemic H9C2 cells induced by hydrogen peroxide (H2O2). H9C2 cells were cultured and treated with different concentrations of H2O2 solution. Then, cells were transfected with miR-370 mimic or negative control (NC) mimic, small interfering (si)-RNA-Forkhead box O1 (FOXO1) and NC siRNA. A Cell Counting Kit-8 and flow cytometry assay were conducted to detect cell viability and cell apoptosis. The expression of oxidative stress associated factors were detected by ELISA. The levels of miR-370 and FOXO1 were examined using western blotting and reverse transcription-quantitative PCR. A luciferase reporter gene assay was performed to verify whether FOXO1 was a target gene of miR-370. The results revealed that miR-370 expression was downregulated and FOXO1 expression was increased in H9C2 cells induced by H2O2. Additionally, FOXO1 was proven to be a target of miR-370. The ELISA and flow cytometry assay revealed that miR-370 overexpression and FOXO1 silencing reversed H2O2-induced oxidative stress and apoptosis. The results indicated that miR-370 could inhibit the oxidative stress and apoptosis of H9C2 cells induced by H2O2 by targeting FOXO1. Therefore, miR-370 may be a new therapeutic target for ischemic heart disease.Entities:
Keywords: Forkhead box O1; apoptosis; microRNA-370; myocardial infarction; oxidative stress
Year: 2019 PMID: 31555385 PMCID: PMC6755418 DOI: 10.3892/etm.2019.7908
Source DB: PubMed Journal: Exp Ther Med ISSN: 1792-0981 Impact factor: 2.447
Figure 1.Cell viability is inhibited by H2O2 in H9C2 cells. Cell viability was detected by a Cell Counting Kit-8 assay. Three independent experiments were carried out. Error bars represent the mean ± standard deviation of at least three independent experiments **P<0.01 and ***P<0.001 vs. control. H2O2, hydrogen peroxide.
Figure 2.miR-370 overexpression attenuates H2O2-induced oxidative stress and apoptosis in H9C2 cells. (A) The expression of miR-370 was detected by reverse transcription-quantitative PCR upon transfection of H2O2-induced H9C2 cells with NC and miRNA-370 mimics. (B) The activity of SOD, LDH and MDA in H2O2-induced H9C2 cells was determined by ELISA. (C) After transfection with miR-370 or NC mimics, H9C2 cells were determined by Annexin-V-FITC/propidium iodide staining. (D) Percentage of apoptotic cell death. Three independent experiments were carried out. Error bars represent the mean ± standard deviation of at least three independent experiments. **P<0.01 and ***P<0.001 vs. control; #P<0.05, ##P<0.01 and ###P<0.001 vs. H2O2 group. H2O2, hydrogen peroxide; miR-370, microRNA-370; NC, negative control; SOD, superoxide dismutase; LDH, lactate dehydrogenase; MDA, malondialdehyde; FITC, fluorescein isothiocyanate.
Figure 3.FOXO1 is a target gene of miR-370. (A) Human FOXO1 3′-UTR containing the WT or MUT type miR-370 binding site was cloned into the miRNA expression vector. FOXO1 was predicted as the target gene of miR-370 by TargetScan. (B) H9C2 cells were co-transfected with WT or MT plasmids and miR-370 or miR-control (miR-NC) and luciferase activity was then detected using a luciferase reporter assay. Three independent experiments were conducted. Error bars represent the mean ± standard deviation of at least three independent experiments. ***P<0.001 vs. the UTR-MUT miR-370 group. miR-370, microRNA-370; FOXO1, Forkhead box O1; UTR, untranslated region; WT, wild type; MUT, mutant; miRNA, microRNA; NC, negative control.
Figure 4.FOXO1 expression is increased in H2O2-induced H9C2 cells. (A) RT-qPCR and (B) western blot analysis were performed to detect the mRNA and protein levels of FOXO1 in different group. ***P<0.001 vs. control; ##P<0.01 vs. H2O2 group. After treatment with H2O2, H9C2 cells were transfected with siR-FOXO1-1, siR-FOXO1-2 and NC siRNA plasmids. The interference efficiency was measured by (C) RT-qPCR and (D) western blotting in the siR-FOXO1-1 and siR-FOXO1-2 groups. #P<0.05, ##P<0.01 and ###P<0.001 vs. H2O2 group. Three independent experiments were carried out. Error bars represent the mean ± standard deviation of at least three independent experiments. FOXO1, Forkhead box O1; siRNA/siR, small interfering RNA; NC, negative control; H2O2, hydrogen peroxide; RT-qPCR, reverse transcription-quantitative PCR.
Figure 5.Effect of FOXO1 silencing on oxidative stress and apoptosis levels in H9C2 cells. After treatment with H2O2, H9C2 cells were transfected with siR-FOXO1-1 and NC siRNA plasmids. (A) The oxidative status markers including SOD, MDA and LDH were detected by ELISA. (B) Apoptosis was evaluated using a flow cytometer. (C) The percentage of apoptotic cells. ***P<0.001 vs. control; ##P<0.01 and ###P<0.001 vs. H2O2 group. Three independent experiments were conducted. Error bars represent the mean ± standard deviation of at least three independent experiments. SOD, superoxide dismutase; LDH, lactate dehydrogenase; MDA, malondialdehyde; FOXO1, Forkhead box O1; siRNA/siR, small interfering RNA; NC, negative control; H2O2, hydrogen peroxide.