circDLPAG4/HECTD1 mediates ischaemia/reperfusion injury in endothelial cells via ER stress.
Lulu ChenWei LuoWei ZhangHan ChuJing WangXiaoniu DaiYusi ChengTiebing ZhuJie ChaoPublished in: RNA biology (2019)
Background: Vascular endothelial cell dysfunction, characterized by cell apoptosis and migration, plays a crucial role in ischaemia/reperfusion (I/R) injury, a common aspect of cardiovascular diseases. Recent studies have suggested that non-coding RNAs, such as circular RNAs (circRNA), play a role in cell dysfunction in I/R injury, although the detailed mechanism is unclear.Methods: Human umbilical vein endothelial cells (HUVECs) were used for in vitro I/R model. Protein expression was detected by western blotting (WB) and immunocytochemistry. The CRISPR/Cas9 system, WB, cell viability assays, Hoechst staining and a 3D migration model were used to explore functional changes. RNA expression was evaluated using quantitative real-time PCR and a FISH assay combined with lentivirus transfection regulating circRNAs and miRNAs. A mouse myocardial I/R model using C57 mice was established to confirm the in vitro findings.Results: In HUVECs, I/R induced a significant time-dependent decrease in HECTD1 associated with an approximately 45% decrease in cell viability and increases in cell apoptosis and migration, which were attenuated by HECTD1 overexpression. I/R-induced upregulation of endoplasmic reticulum stress was also attenuated HECTD1 overexpression. Moreover, miR-143 mimics inhibited HECTD1 expression, which was restored by circDLGAP4 overexpression, providing insight as to the molecular mechanism of I/R-induced HECTD1 in endothelial cell dysfunction.Conclusion: Our results suggest a critical role for circDLGAP4 and HECTD1 in endothelial cell dysfunction induced by I/R, providing novel insight into potential therapeutic targets for the treatment of myocardial ischaemia.
Keyphrases
- endothelial cells
- high glucose
- cell proliferation
- endoplasmic reticulum stress
- poor prognosis
- oxidative stress
- crispr cas
- diabetic rats
- vascular endothelial growth factor
- cardiovascular disease
- transcription factor
- acute myocardial infarction
- high throughput
- induced apoptosis
- long non coding rna
- left ventricular
- real time pcr
- single cell
- heart failure
- type diabetes
- signaling pathway
- cell therapy
- adipose tissue
- stem cells
- climate change
- insulin resistance
- percutaneous coronary intervention
- cerebral ischemia
- combination therapy
- cardiovascular risk factors