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Published on: July 22, 2020
Exon expression arrays as a tool to identify new cancer genes
Mieke Schutte1, Fons Elstrodt, Linda B C Bralten
1Department of Medical Oncology, Josephine Nefkens Institute, Erasmus University Medical Center, Rotterdam, The Netherlands. a.schutte@erasmusmc.nl
Background:
Identification of genes that are causally implicated in oncogenesis is a major goal in cancer research. An estimated 10-20% of cancer-related gene mutations result in skipping of one or more exons in the encoded transcripts. Here we report on a strategy to screen in a global fashion for such exon-skipping events using PAttern based Correlation (PAC). The PAC algorithm has been used previously to identify differentially expressed splice variants between two predefined subgroups. As genetic changes in cancer are sample specific, we tested the ability of PAC to identify aberrantly expressed exons in single samples.
Principal Findings:
As a proof-of-principle, we tested the PAC strategy on human cancer samples of which the complete coding sequence of eight cancer genes had been screened for mutations. PAC detected all seven exon-skipping mutants among 12 cancer cell lines. PAC also identified exon-skipping mutants in clinical cancer specimens although detection was compromised due to heterogeneous (wild-type) transcript expression. PAC reduced the number of candidate genes/exons for subsequent mutational analysis by two to three orders of magnitude and had a substantial true positive rate. Importantly, of 112 randomly selected outlier exons, sequence analysis identified two novel exon skipping events, two novel base changes and 21 previously reported base changes (SNPs).
Conclusions:
The ability of PAC to enrich for mutated transcripts and to identify known and novel genetic changes confirms its suitability as a strategy to identify candidate cancer genes.
Insights
A new PAttern based Correlation (PAC) strategy efficiently screens for exon-skipping events in cancer. This method identifies novel genetic changes and candidate cancer genes, aiding oncogenesis research.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Identifying genes in oncogenesis is crucial for cancer research.
- 10-20% of cancer mutations involve exon skipping.
- Exon skipping leads to aberrant transcripts.
Purpose of the Study:
- To develop and test a global screening strategy for exon-skipping events.
- To adapt the PAttern based Correlation (PAC) algorithm for single-sample analysis.
- To identify candidate cancer genes through aberrant exon expression.
Main Methods:
- Utilized the PAttern based Correlation (PAC) algorithm.
- Applied PAC to screen for exon skipping in human cancer cell lines and clinical specimens.
- Validated findings through sequence analysis of outlier exons.
Main Results:
- PAC successfully detected all seven known exon-skipping mutants in 12 cancer cell lines.
- Identified exon-skipping mutants in clinical samples, despite expression heterogeneity.
- Reduced candidate genes for analysis by 2-3 orders of magnitude with a high true positive rate.
- Discovered two novel exon skipping events and two novel base changes in clinical samples.
Conclusions:
- PAC effectively enriches for mutated transcripts.
- The strategy successfully identifies both known and novel genetic alterations.
- PAC is a suitable method for identifying candidate cancer genes.
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