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Published on: April 24, 2021
Circ_016719 plays a critical role in neuron cell apoptosis induced by I/R via targeting miR-29c/Map2k6
Chaogang Tang1, Jianying Ou2, Li Kou1
1Department of Neurology, The Fifth Affiliated Hospital of Sun Yat-Sen University, Zhuhai, 519000, Guangdong, China.
Background:
Stroke is a leading cause of mortality worldwide. Rac-MAPK kinase 6 (Map2k6) plays important roles in cell proliferation and apoptosis. However, the role played by Map2k6 in stroke injury and the underlying mechanism of action remain unknown.
Methods:
Mice received cerebral ischemia/reperfusion (I/R) injuries by transient middle cerebral artery occlusion. HT22 cells were subjected to oxygen glucose deprivation and reoxygenation (OGD/R) to simulate an I/R injury. Subsequently, the levels of circ_016719, miR-29c and Map2k6 expression were determined, and their interactions were examined by luciferase assays. Circ_016719 knockdown, miR-29c inhibition or Map2k6 overexpression was induced in HT22 cells; after which, the cells were examined for their viability, apoptosis, autophagy and proliferation, as well their levels of Map2k6, p38, p53, LC3B-I, LC3B-II, Beclin 1, and p62 expression.
Results:
Significantly increased levels of circ_016719 and Map2k6, and decreased levels of miR-29c were observed in both in vivo and in vitro I/R injury models. In HT22 cells, circ_016719 knockdown significantly increased miR-29c expression and cell proliferation, but decreased Map2k6 expression and cell apoptosis. Additionally, significant increases in LC3B-I and p62 levels and decreased LC3B-II levels were observed, indicating that circ_016719 knockdown had significantly inhibited autophagy. Furthermore, additional inhibition of miR-29c markedly suppressed the effects of circ_016719 knockdown; however, that suppression was significantly attenuated by Map2k6 overexpression. Additionally, Map2k6 was identified as a direct target of miR-29c, which in turn, might be sponged by circ_016719.
Conclusions:
Our results suggest that circ_016719 directly targets miR-29c, and thereby regulates the expression and functions of Map2k6, which significantly contributes to the pro-apoptotic role of circ_016719.
Insights
This study reveals that circ_016719 promotes stroke injury by targeting miR-29c and regulating Map2k6, leading to increased apoptosis. Inhibiting circ_016719 may offer a therapeutic strategy for stroke.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Stroke is a major global cause of mortality.
- Rac-MAPK kinase 6 (Map2k6) is involved in cell proliferation and apoptosis.
- The specific role of Map2k6 in stroke injury remains unclear.
Purpose of the Study:
- To investigate the role of Map2k6 in cerebral ischemia/reperfusion (I/R) injury.
- To elucidate the underlying molecular mechanisms involving circ_016719 and miR-29c.
- To determine the interaction between circ_016719, miR-29c, and Map2k6 in stroke models.
Main Methods:
- Established in vivo (mice) and in vitro (HT22 cells) models of I/R injury.
- Quantified expression levels of circ_016719, miR-29c, and Map2k6.
- Utilized luciferase assays to examine molecular interactions.
- Performed gene knockdown/overexpression experiments and assessed cell viability, apoptosis, and autophagy markers.
Main Results:
- Circ_016719 and Map2k6 levels were elevated, while miR-29c levels decreased in I/R injury models.
- Circ_016719 knockdown enhanced cell proliferation and miR-29c expression, while reducing apoptosis and Map2k6 expression.
- Circ_016719 knockdown inhibited autophagy, and these effects were modulated by miR-29c and Map2k6 levels.
- Map2k6 was identified as a direct target of miR-29c, with circ_016719 acting as a potential sponge.
Conclusions:
- Circ_016719 promotes apoptosis in I/R injury by targeting miR-29c and regulating Map2k6.
- The circ_016719/miR-29c/Map2k6 axis plays a critical role in stroke pathophysiology.
- Targeting this pathway may represent a novel therapeutic approach for stroke treatment.
