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Inhibition of the BCL6/miR-31/PKD1 axis attenuates oxidative stress-induced neuronal damage
Pingbo Wei1, Hao Chen2, Bin Lin2
1Department of Neurosurgery, West China Hospital of Sichuan University, Chengdu 610041, PR China; Department of Neurosurgery, People's Hospital of Mianzhu City, Mianzhu 618200, PR China.
Insights
Inhibition of BCL6 may reduce brain damage in ischemic stroke (IS) by regulating the miR-31/PKD1 pathway, offering a potential therapeutic target for this common cerebrovascular disease.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Ischemic stroke (IS) is a leading cause of disability worldwide.
- Aberrant BCL6 expression is linked to IS pathogenesis.
- BCL6 regulates miR-31, which targets PKD1, potentially influencing cell damage.
Purpose of the Study:
- To investigate the role of BCL6 in ischemic stroke by examining its targeting of PKD1.
- To elucidate the BCL6/miR-31/PKD1 axis in the context of IS.
Main Methods:
- Established in vitro and in vivo models of ischemic stroke.
- Utilized TUNEL staining, MTT assay, qRT-PCR, and Western blot analysis.
- Performed bioinformatics analysis to predict miR-31 targets.
Main Results:
- BCL6 overexpression increased apoptosis and decreased miR-31 in IS models.
- miR-31 downregulation counteracted BCL6's effects on cell injury.
- miR-31 directly targets PKD1; PKD1 inhibition reduced IS-induced cell damage and JAK2/STAT3 activation.
- BCL6 inhibition reduced infarct size and oxidative stress in IS mice.
Conclusions:
- BCL6 inhibition may attenuate oxidative stress-induced neuronal damage in IS.
- The miR-31/PKD1 axis is a key mediator in BCL6's effect on IS.
- Targeting BCL6 presents a potential therapeutic strategy for ischemic stroke.
Abstract:
Ischemic stroke (IS) is one of the most common cerebrovascular diseases worldwide. The aberrant expression of BCL6 has been previously implicated in the pathogenesis of IS. Meanwhile, miR-31 is known as a target of BCL6, and has also been suggested to diminish cell damage by suppressing the PKD1 expression. Expanding on this relationship, the current study set out to investigate whether BCL6 participates in ischemic stroke by targeting PKD1. Firstly, IS models were established in vitro and in vivo. TUNEL staining and MTT assay were performed to examine the apoptosis and cell survival. In addition, qRT-PCR and Western blot analysis were applied to examine the expression patterns of the BCL6/miR-31/PKD1 axis and its downstream pathway. Bioinformatics analysis was used to predict the target of miR-31. It was found that BCL6 over-expression promoted ODG-induced increase of apoptosis and decreased the cell survival and miR-31 expression levels, whereas the opposite effects were noted in vitro and in vivo models of IS that were treated with shBCL6. Furthermore, miR-31 down-regulation blocked the effect of BCL6 on ODG-induced cell injury. It was also verified that miR-31 directly-targets PKD1. Also, OGD induced the PKD1 expression and activation of the JAK2/STAT3 pathway, while down-regulation of PKD1 inhibited the OGD-induced cell injury and JAK2/STAT3 pathway activation. Lastly, down-regulation of BCL6 in brain brought about a significant reduction in the size of cerebral infarction and oxidative stress levels in IS mice. Collectively, our findings suggest that inhibition of BCL6 may attenuate oxidative stress-induced neuronal damage by targeting the miR-31/PKD1 axis.
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