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Updated: Sep 28, 2025

Using RNA-sequencing to Detect Novel Splice Variants Related to Drug Resistance in In Vitro Cancer Models
Published on: December 9, 2016
Alternative RNA splicing defects in pediatric cancers: new insights in tumorigenesis and potential therapeutic
A S Venkataramany1, K M Schieffer2, K Lee3
1Biomedical Sciences Graduate Program, The Ohio State University, Columbus, USA; Medical Scientist Training Program, The Ohio State University, Columbus, USA.
Background:
Compared with adult cancers, pediatric cancers are uniquely characterized by a genomically stable landscape and lower tumor mutational burden. Alternative splicing, however, a global cellular process that produces different messenger RNA/protein isoforms from a single messenger RNA transcript, has been increasingly implicated in the development of pediatric cancers.
Design:
We review the current literature on the role of alternative splicing in adult cancer, cancer predisposition syndromes, and pediatric cancers. We also describe multiple splice variants identified in adult cancers and confirmed through comprehensive genomic profiling in our institutional cohort of rare, refractory, and relapsed pediatric and adolescent young adult cancer patients. Finally, we summarize the contributions of alternative splicing events to neoantigens and chemoresistance and prospects for splicing-based therapies.
Results:
Published dysregulated splicing events can be categorized as exon inclusion, exon exclusion, splicing factor up-regulation, or splice site alterations. We observe these phenomena in cancer predisposition syndromes (Lynch syndrome, Li-Fraumeni syndrome, CHEK2) and pediatric leukemia (B-cell acute lymphoblastic leukemia), sarcomas (Ewing sarcoma, rhabdomyosarcoma, osteosarcoma), retinoblastoma, Wilms' tumor, and neuroblastoma. Within our institutional cohort, we demonstrate splice variants in key regulatory genes (CHEK2, TP53, PIK3R1, MDM2, KDM6A, NF1) that resulted in exon exclusion or splice site alterations, which were predicted to impact functional protein expression and promote tumorigenesis. Differentially spliced isoforms and splicing proteins also impact neoantigen creation and treatment resistance, such as imatinib or glucocorticoid regimens. Additionally, splice-altering strategies with the potential to change the therapeutic landscape of pediatric cancers include antisense oligonucleotides, adeno-associated virus gene transfers, and small molecule inhibitors.
Conclusions:
Alternative splicing plays a critical role in the formation and growth of pediatric cancers, and our institutional cohort confirms and highlights the broad spectrum of affected genes in a variety of cancers. Further studies that elucidate the mechanisms of disease-inducing splicing events will contribute toward the development of novel therapeutics.
Insights
Alternative splicing significantly impacts pediatric cancer development, influencing tumor growth and treatment resistance. Understanding these splicing alterations is key to developing novel targeted therapies for pediatric cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Pediatric cancers exhibit a genomically stable landscape with low tumor mutational burden compared to adult cancers.
- Alternative splicing, a process generating diverse mRNA/protein isoforms, is increasingly recognized for its role in pediatric cancer development.
Purpose of the Study:
- To review the literature on alternative splicing in adult and pediatric cancers, including cancer predisposition syndromes.
- To analyze splice variants in a cohort of rare, refractory, and relapsed pediatric and adolescent young adult cancers.
- To explore the contribution of alternative splicing to neoantigens, chemoresistance, and potential therapeutic strategies.
Main Methods:
- Literature review of alternative splicing in various cancers and syndromes.
- Comprehensive genomic profiling of a pediatric and adolescent young adult cancer patient cohort.
- Analysis of splice variants in key regulatory genes and their predicted functional impact.
Main Results:
- Dysregulated splicing events (exon inclusion/exclusion, splicing factor up-regulation, splice site alterations) are observed in various pediatric cancers and cancer predisposition syndromes.
- Splice variants in genes like TP53 and CHEK2 were identified in the institutional cohort, predicted to promote tumorigenesis.
- Alternative splicing impacts neoantigen creation and resistance to therapies like imatinib and glucocorticoids.
Conclusions:
- Alternative splicing is critical in the initiation and progression of pediatric cancers, affecting a wide range of genes.
- Further research into the mechanisms of disease-driving splicing events is essential for developing new pediatric cancer therapeutics.
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