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Hsa-miR-376c-3p targets Cyclin D1 and induces G1-cell cycle arrest in neuroblastoma cells
Swapnil Parashram Bhavsar1, Cecilie Løkke1, Trond Flægstad1,2
1Pediatric Research Group, Department of Clinical Medicine, Faculty of Health Science, The Arctic University of Norway-UiT, NO-9037 Tromsø, Norway.
Insights
MicroRNAs (miRNAs) are key in cancer. This study shows miR-376c-3p downregulation in high-risk neuroblastoma, inhibiting cancer cell viability and suggesting new treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- High-risk neuroblastoma has poor survival rates and frequent relapse.
- MicroRNAs (miRNAs) are implicated in cancer development when deregulated.
- Previous studies identified downregulated miRNAs in neuroblastoma, including miR-376c-3p.
Purpose of the Study:
- To investigate the role of miR-376c-3p in neuroblastoma.
- To identify targets of miR-376c-3p in neuroblastoma cell lines.
- To explore miR-376c-3p as a potential therapeutic target for neuroblastoma.
Main Methods:
- Reverse transcription-quantitative polymerase chain reaction (RT-qPCR) to measure miR-376c-3p expression.
- Alamar blue and propidium iodide-flow cytometry assays to assess cell viability and cell cycle.
- Luciferase reporter assays, RT-qPCR, and western blotting to identify and quantify miR-376c-3p targets.
Main Results:
- miR-376c-3p was downregulated in neuroblastoma cell lines, particularly post-treatment.
- Ectopic expression of miR-376c-3p inhibited neuroblastoma cell viability.
- miR-376c-3p induced G1-cell cycle arrest by downregulating the oncogene cyclin D1.
Conclusions:
- miR-376c-3p plays a significant role in inhibiting neuroblastoma cell proliferation.
- Downregulation of miR-376c-3p contributes to neuroblastoma pathogenesis.
- miR-376c-3p represents a promising therapeutic target for high-risk neuroblastoma treatment.
Abstract:
High-risk neuroblastoma is the most aggressive form of cancer in children. The estimated survival of children with high-risk neuroblastoma is 40-50% compared with low and intermediate risk neuroblastoma, which is >98 and 90-95%, respectively. In addition, patients with high-risk neuroblastoma often experience relapse following intensive treatments with standard chemotherapeutic drugs. Therefore alternative strategies are required to address this problem. MicroRNAs (miRNAs/miRs) are small, endogenously expressed non-coding RNAs, which when deregulated have been demonstrated to serve significant roles in the tumorigenesis of a number of different types of cancer. Results from a previous deep sequencing study identified 22 downregulated miRNAs from the 14q32 miRNA cluster differentially expressed in neuroblastoma cell lines isolated from 6 patients at diagnosis and at relapse following intensive treatments. miR-376c-3p is one of the 22 miRNAs that was downregulated in the majority of the cell lines isolated from patients post treatment. The present study employed reverse transcription-quantitative polymerase chain reaction (RT-qPCR) to quantify the basic expression of miR-376c-3p in 6 neuroblastoma cell lines. The functional role of miR-376c-3p in the neuroblastoma cell lines was evaluated by alamar blue-cell viability and propidium iodide-flow cytometric assays. In addition, luciferase reporter assays, RT-qPCR and western blotting were performed to identify and quantify the targets of miR-376c-3p in neuroblastoma cell lines. Ectopic expression of miR-376c-3p led to significant inhibition of cell viability and G1-cell cycle arrest in multiple neuroblastoma cell lines by reducing the expression of cyclin D1, an oncogene critical for neuroblastoma pathogenesis. The results of the present study provide novel insights into the functional role of miR-376c-3p and suggest new approaches for the treatment of neuroblastoma.
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