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Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
Downregulation of microRNA-130a contributes to endothelial progenitor cell dysfunction in diabetic patients via its
Shu Meng1, Jiatian Cao, Xiaoping Zhang
1Department of Cardiology, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai, China.
Abstract:
Dysfunction of endothelial progenitor cells (EPCs) contributes to diabetic vascular disease. MicroRNAs (miRs) have emerged as key regulators of diverse cellular processes including angiogenesis. We recently reported that miR-126, miR-130a, miR-21, miR-27a, and miR-27b were downregulated in EPCs from type II diabetes mellitus (DM) patients, and downregulation of miR-126 impairs EPC function. The present study further explored whether dysregulated miR-130a were also related to EPC dysfunction. EPCs were cultured from peripheral blood mononuclear cells of diabetic patients and healthy controls. Assays on EPC function (proliferation, migration, differentiation, apoptosis, and colony and tubule formation) were performed. Bioinformatics analyses were used to identify the potential targets of miR-130a in EPCs. Gene expression of miR-103a and Runx3 was measured by real-time PCR, and protein expression of Runx3, extracellular signal-regulated kinase (ERK), vascular endothelial growth factor (VEGF) and Akt was measured by Western blotting. Runx3 promoter activity was measured by luciferase reporter assay. A miR-130a inhibitor or mimic and lentiviral vectors expressing miR-130a, or Runx3, or a short hairpin RNA targeting Runx3 were transfected into EPCs to manipulate miR-130a and Runx3 levels. MiR-130a was decreased in EPCs from DM patients. Anti-miR-130a inhibited whereas miR-130a overexpression promoted EPC function. miR-130a negatively regulated Runx3 (mRNA, protein and promoter activity) in EPCs. Knockdown of Runx3 expression enhanced EPC function. MiR-130a also upregulated protein expression of ERK/VEGF and Akt in EPCs. In conclusion, miR-130a plays an important role in maintaining normal EPC function, and decreased miR-130a in EPCs from DM contributes to impaired EPC function, likely via its target Runx3 and through ERK/VEGF and Akt pathways.
Insights
Decreased microRNA-130a (miR-130a) in endothelial progenitor cells (EPCs) impairs their function in diabetic vascular disease. Restoring miR-130a levels enhances EPC function by targeting Runx3 and activating key signaling pathways.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Endothelial Cell Biology
Background:
- Endothelial progenitor cell (EPC) dysfunction is a hallmark of diabetic vascular disease.
- MicroRNAs (miRs) are critical regulators of cellular processes, including angiogenesis.
- Previous studies indicated reduced miR-126 in diabetic EPCs, prompting investigation into other miRs like miR-130a.
Purpose of the Study:
- To investigate the role of dysregulated miR-130a in the dysfunction of EPCs from type II diabetes mellitus (DM) patients.
- To identify the molecular targets and signaling pathways regulated by miR-130a in EPCs.
Main Methods:
- EPCs were isolated from diabetic patients and healthy controls.
- Functional assays assessed EPC proliferation, migration, differentiation, and tubule formation.
- Bioinformatics, real-time PCR, Western blotting, and luciferase assays identified miR-130a targets and pathways.
- Genetic manipulation using inhibitors, mimics, and lentiviral vectors modulated miR-130a and Runx3 levels.
Main Results:
- miR-130a was significantly decreased in EPCs from DM patients.
- miR-130a overexpression promoted EPC function, while inhibition impaired it.
- miR-130a directly targeted and repressed Runx3 expression (mRNA, protein, promoter activity).
- Runx3 knockdown improved EPC function.
- miR-130a upregulated ERK/VEGF and Akt protein expression.
Conclusions:
- Decreased miR-130a in diabetic EPCs contributes to impaired vascular repair.
- miR-130a maintains EPC function by negatively regulating Runx3.
- The ERK/VEGF and Akt signaling pathways are involved in miR-130a-mediated regulation of EPC function.
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