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A Preclinical Mouse Model of Osteosarcoma to Define the Extracellular Vesicle-mediated Communication Between Tumor and Mesenchymal Stem Cells
Published on: May 6, 2018
Exosomal MiR-199a-5p Inhibits Tumorigenesis and Angiogenesis by Targeting VEGFA in Osteosarcoma
Lu Zhang1, Hongxin Cao2,3, Guanghui Gu1
1Department of Orthopedics, Qilu Hospital of Shandong University and Spine and Spinal Cord Disease Research Center, Shandong University, Jinan, China.
Background:
Osteosarcoma (OS) is the most common primary bone malignancy in children and adolescents. microRNAs have been found to play a vital role in tumor angiogenesis. Here, we investigated the effects of miR-199a-5p on tumor growth and angiogenesis in osteosarcoma. Furthermore, the underlying molecular mechanisms and signaling pathways were explored.
Methods:
The datasets were extracted from the Gene Expression Omnibus and the differentially expressed miRNAs (DEmiRNAs) were screened out by the GEO2R online platform. The potential target genes were predicted using the miRTarBase database. The predicted target genes were further analyzed by Gene Ontology and pathway enrichment analysis and a regulatory network of DEmiRNAs and their target genes was constructed. In addition, the effects of osteosarcoma cell derived exosomal miR-199a-5p on the proliferation, migration and neovascularization of HUVECs were evaluated by conducting EdU assays, Transwell experiments and tube formation assays. A dual-luciferase reporter assay was performed to detect whether VEGFA was the direct target of miR-199a-5p. Furthermore, in vivo xenograft models were established to further investigate the intrinsic role of miR-199a-5p in osteosarcoma tumorigenesis and angiogenesis.
Results:
A total of 149 DE-miRNAs were screened out, including 136 upregulated miRNAs and 13 downregulated miRNAs in human osteosarcoma plasma samples compared with normal plasma samples. A total of 1313 target genes of the top three upregulated and downregulated miRNAs were predicted. In the PPI network, the top 10 hub nodes with higher degrees were identified as hub genes, such as TP53 and VEGFA. By constructing the miRNA-hub gene network, we found that most of hub genes could be potentially modulated by miR-663a, miR-199a-5p and miR-223-3p. In addition, we found that the expression level of miR-199a-5p in exosomes derived from osteosarcoma cells was remarkably higher than the osteosarcoma cells, and the exosomes derived from osteosarcoma cells were transported to HUVECs. Overexpression of miR-199a-5p could significantly inhibited HUVEC proliferation, migration and neovascularization, whereas downregulation of miR-199a-5p expression exerted the opposite effect. Moreover, the in vivo results verified that overexpression of miR-199a-5p in osteosarcoma cells could suppress the growth and angiogenesis of tumors.
Conclusion:
Our results demonstrated that miR-199a-5p could be transported from osteosarcoma cells to HUVECs through exosomes, subsequently targeting VEGFA and inhibiting the growth and angiogenesis of osteosarcoma. Therefore, miR-199a-5p may act as a biomarker in the diagnosis and treatment of osteosarcoma.
Insights
MicroRNA-199a-5p, delivered via exosomes from osteosarcoma cells, inhibits tumor growth and angiogenesis by targeting VEGFA. This microRNA shows potential as a diagnostic and therapeutic biomarker for osteosarcoma.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Osteosarcoma (OS) is a prevalent primary bone cancer in pediatric and adolescent populations.
- MicroRNAs (miRNAs) are recognized for their critical roles in regulating tumor angiogenesis.
- This study investigates the specific impact of miR-199a-5p on osteosarcoma progression and its underlying molecular mechanisms.
Purpose of the Study:
- To explore the function of miR-199a-5p in osteosarcoma growth and angiogenesis.
- To elucidate the molecular pathways and signaling networks influenced by miR-199a-5p.
- To evaluate miR-199a-5p as a potential biomarker for osteosarcoma.
Main Methods:
- Differential expression analysis of miRNAs in osteosarcoma using GEO datasets and GEO2R.
- Prediction and pathway analysis of miRNA target genes using miRTarBase, GO, and pathway enrichment.
- In vitro assays (EdU, Transwell, tube formation) to assess exosomal miR-199a-5p effects on HUVECs.
- Dual-luciferase reporter assay to confirm VEGFA as a direct miR-199a-5p target.
- In vivo xenograft models to validate miR-199a-5p's role in osteosarcoma tumorigenesis and angiogenesis.
Main Results:
- 149 differentially expressed miRNAs were identified in osteosarcoma plasma samples.
- miR-199a-5p was found at higher levels in exosomes from osteosarcoma cells and transported to HUVECs.
- Overexpression of miR-199a-5p inhibited HUVEC proliferation, migration, and neovascularization, while its downregulation had the opposite effect.
- In vivo studies confirmed that miR-199a-5p overexpression suppresses osteosarcoma growth and angiogenesis, targeting VEGFA.
Conclusions:
- miR-199a-5p, transferred via exosomes, targets VEGFA to inhibit osteosarcoma growth and angiogenesis.
- miR-199a-5p demonstrates significant potential as a diagnostic and therapeutic biomarker for osteosarcoma.
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