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Updated: Dec 2, 2025

Discovery of Driver Genes in Colorectal HT29-derived Cancer Stem-Like Tumorspheres
Published on: July 22, 2020
Discovery of driver non-coding splice-site-creating mutations in cancer
Song Cao1,2, Daniel Cui Zhou1,2, Clara Oh1,2
1Department of Medicine, Washington University in St. Louis, St. Louis, MO, 63110, USA.
Abstract:
Non-coding mutations can create splice sites, however the true extent of how such somatic non-coding mutations affect RNA splicing are largely unexplored. Here we use the MiSplice pipeline to analyze 783 cancer cases with WGS data and 9494 cases with WES data, discovering 562 non-coding mutations that lead to splicing alterations. Notably, most of these mutations create new exons. Introns associated with new exon creation are significantly larger than the genome-wide average intron size. We find that some mutation-induced splicing alterations are located in genes important in tumorigenesis (ATRX, BCOR, CDKN2B, MAP3K1, MAP3K4, MDM2, SMAD4, STK11, TP53 etc.), often leading to truncated proteins and affecting gene expression. The pattern emerging from these exon-creating mutations suggests that splice sites created by non-coding mutations interact with pre-existing potential splice sites that originally lacked a suitable splicing pair to induce new exon formation. Our study suggests the importance of investigating biological and clinical consequences of noncoding splice-inducing mutations that were previously neglected by conventional annotation pipelines. MiSplice will be useful for automatically annotating the splicing impact of coding and non-coding mutations in future large-scale analyses.
Insights
Somatic non-coding mutations can alter RNA splicing, creating new exons. The MiSplice pipeline identified 562 such mutations, impacting cancer-related genes and protein expression.
Area of Science:
- Genomics
- Molecular Biology
- Cancer Research
Background:
- Somatic non-coding mutations' impact on RNA splicing is largely unexplored.
- Conventional annotation pipelines often overlook splice-altering mutations.
Purpose of the Study:
- To investigate the extent and consequences of non-coding mutations affecting RNA splicing.
- To introduce and utilize the MiSplice pipeline for analyzing splicing alterations.
Main Methods:
- Analysis of whole-genome sequencing (WGS) data from 783 cancer cases.
- Analysis of whole-exome sequencing (WES) data from 9494 cancer cases using the MiSplice pipeline.
Main Results:
- Discovery of 562 non-coding mutations causing splicing alterations.
- Identification that most mutations create new exons, often in larger introns.
- Observed alterations in cancer-associated genes (e.g., TP53, ATRX), leading to truncated proteins.
Conclusions:
- Non-coding splice-inducing mutations can significantly impact gene expression and protein function in cancer.
- The findings highlight the importance of studying these previously neglected mutations.
- The MiSplice pipeline is a valuable tool for future large-scale mutation analysis.
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