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Quantitative Analysis of Alternative Pre-mRNA Splicing in Mouse Brain Sections Using RNA In Situ Hybridization Assay
Published on: August 26, 2018
Rab15 alternative splicing is altered in spheres of neuroblastoma cells
Thi Van Huyen Pham1, Tri Budi Hartomo, Myeong Jin Lee
1Department of Pediatrics, Kobe University Graduate School of Medicine, Kobe, Japan.
Abstract:
Neuroblastoma is an aggressive pediatric tumor that accounts for 15% of cancer-related deaths in children. More than half of high-risk neuroblastoma patients develop tumor relapse that is lethal in most cases. A small population of tumor-initiating cells (TICs), recently identified from high-risk neuroblastoma patients as spheres, is believed to be responsible for tumor relapse. Rab family small G proteins are essential in controlling membrane traffic and their misregulation results in several cancers. Rab15 was originally isolated as a brain-specific Rab protein regulating the endocytic recycling pathway and was recently identified as a downstream target of the neural transcription factor Atoh1. Previously, we identified two alternatively spliced Rab15 isoforms in neuroblastoma cells and showed a significant correlation between Rab15 expression and neuronal differentiation. As aberrant alternative splicing is intimately associated with an increasing number of cancers, its use as a new diagnostic and/or prognostic biomarker has attracted considerable attention. In the present study, we explored cancer-associated changes of Rab15 alternative splicing in neuroblastoma TICs. We found that Rab15 alternative splicing generated two novel isoforms designated as Rab15(AN2) and Rab15(AN3) in addition to two known isoforms designated as Rab15(CN) and Rab15(AN1). Although both Rab15(AN2) and Rab15(AN3) contained premature termination codons, they were detected in not only neuroblastoma cells but also in normal human tissues. One isoform was predominantly expressed in the brain and testis, while the other isoform was more specifically expressed in the brain. In neuroblastoma, Rab15 isoform balance measured by the Rab15(CN)/Rab15(AN1+AN2+AN3) ratio was significantly decreased in spheres compared to parental cells. These results suggest that Rab15 alternative splicing may serve as a biomarker to discriminate TICs from non-TICs in neuroblastoma.
Insights
Alternative splicing of Rab15 shows altered patterns in neuroblastoma tumor-initiating cells (TICs). This Rab15 isoform imbalance may help identify TICs, offering a potential biomarker for high-risk neuroblastoma relapse.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Neuroblastoma is a deadly pediatric cancer with high relapse rates, often driven by tumor-initiating cells (TICs).
- Rab proteins regulate cell processes, and their dysregulation is linked to cancer.
- Rab15, a brain-specific protein, is involved in endocytic recycling and linked to neuronal differentiation.
Purpose of the Study:
- To investigate cancer-associated changes in Rab15 alternative splicing within neuroblastoma TICs.
- To identify novel Rab15 isoforms and assess their expression in neuroblastoma and normal tissues.
- To determine if Rab15 splicing patterns can differentiate TICs from non-TICs.
Main Methods:
- Analysis of Rab15 alternative splicing in neuroblastoma TICs and parental cells.
- Identification and characterization of novel Rab15 isoforms (Rab15(AN2) and Rab15(AN3)).
- Quantification of Rab15 isoform balance using the Rab15(CN)/Rab15(AN1+AN2+AN3) ratio.
Main Results:
- Two novel Rab15 isoforms, Rab15(AN2) and Rab15(AN3), were identified, alongside known isoforms Rab15(CN) and Rab15(AN1).
- While Rab15(AN2) and Rab15(AN3) contain premature termination codons, they are present in both cancer and normal human tissues, with specific brain and testis expression.
- The Rab15 isoform balance, indicated by a decreased Rab15(CN)/Rab15(AN1+AN2+AN3) ratio, was significantly lower in neuroblastoma spheres (TICs) compared to parental cells.
Conclusions:
- Aberrant alternative splicing of Rab15 occurs in neuroblastoma TICs.
- Rab15 alternative splicing patterns, specifically the isoform balance, show potential as a biomarker for distinguishing neuroblastoma TICs from non-TICs.
- This finding could lead to improved diagnostic or prognostic tools for high-risk neuroblastoma.
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