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Co-immunoprecipitation Assay Using Endogenous Nuclear Proteins from Cells Cultured Under Hypoxic Conditions
Published on: August 2, 2018
Inhibition of microRNA-495 inhibits hypoxia-induced apoptosis in H9c2 cells via targeting NFIB
1Department of Critical Care Medicine, Yantai Affiliated Hospital of Binzhou Medical University, Yantai, China. chl7619@mail.sdufe.edu.cn.
Objective:
Acute myocardial infarction (AMI) is a serious cardiovascular disease that threatens human life. MicroRNA is considered to be an important participant in the pathophysiology of AMI. This article focused on the role of microRNA-495 (miR-495) in regulating apoptosis after myocardial infarction (MI) and its underlying mechanisms.
Materials And Methods:
H9c2 cells were cultured in an incubator containing 1% O2 to establish a cell model of MI. Quantitative reverse-transcription polymerase chain reaction (RT-PCR) was utilized to detect miR-495 expression in H9c2 cells. The effects of miR-495 and NFIB on hypoxia-treated H9c2 cells were observed by Western blot, lactate dehydrogenase (LDH) detection, MTT (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide) assay, flow cytometry, and terminal dexynucleotidyl transferase(TdT)-mediated dUTP nick end labeling (TUNEL) staining. Luciferase reporter gene experiment was used to prove the regulatory relationship between miR-495 and NFIB.
Results:
Hypoxia induced injury to H9c2 cells, which was manifested by decreased cell viability, increased LDH release, increased pro-apoptotic proteins (Bax, Cleaved Caspase-3) expression, decreased anti-apoptotic protein (Bcl-2) expression, and increased in the rate of apoptosis and TUNEL positive cells. MiR-495 expression was remarkably increased in H9c2 cells treated with hypoxia. Inhibiting miR-495 expression markedly alleviated the hypoxia-induced injury in H9c2 cells, while silencing NFIB aggravated the hypoxia-induced damage. In addition, NFIB was confirmed to be the target of miR-495.
Conclusions:
MiR-495 expression was increased in hypoxia-treated H9c2 cells. Silencing miR-495 could significantly inhibit hypoxia-induced apoptosis of H9c2 cells by targeting NFIB.
Insights
MicroRNA-495 (miR-495) is upregulated in myocardial infarction models and promotes cell death. Inhibiting miR-495 protects against hypoxia-induced apoptosis by targeting NFIB, offering a potential therapeutic strategy for acute myocardial infarction.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Cellular Pathology
Background:
- Acute myocardial infarction (AMI) is a life-threatening cardiovascular condition.
- MicroRNAs play a crucial role in the pathophysiology of AMI.
- Understanding microRNA regulation in myocardial injury is vital for developing new treatments.
Purpose of the Study:
- To investigate the role of microRNA-495 (miR-495) in regulating apoptosis following myocardial infarction (MI).
- To elucidate the underlying molecular mechanisms of miR-495 in myocardial injury.
Main Methods:
- Established a hypoxia-induced myocardial infarction (MI) cell model using H9c2 cells.
- Quantified miR-495 expression using quantitative reverse-transcription polymerase chain reaction (RT-PCR).
- Assessed cellular apoptosis and protein expression via Western blot, LDH assay, MTT assay, flow cytometry, and TUNEL staining. Verified miR-495 and NFIB interaction using a luciferase reporter assay.
Main Results:
- Hypoxia induced significant H9c2 cell injury, characterized by reduced viability, increased LDH release, altered apoptosis-related protein expression (Bax, Cleaved Caspase-3, Bcl-2), and elevated apoptosis rates.
- miR-495 expression was markedly increased under hypoxic conditions.
- Inhibition of miR-495 alleviated hypoxia-induced cell damage, whereas NFIB silencing exacerbated it. NFIB was confirmed as a direct target of miR-495.
Conclusions:
- miR-495 expression is elevated in hypoxia-treated H9c2 cells.
- Silencing miR-495 significantly inhibits hypoxia-induced apoptosis in H9c2 cells by targeting NFIB, suggesting a protective role for miR-495 inhibition in myocardial infarction.
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