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Updated: Jul 18, 2026

Using RNA-sequencing to Detect Novel Splice Variants Related to Drug Resistance in In Vitro Cancer Models
Published on: December 9, 2016
Alternative splicing and differential gene expression in colon cancer detected by a whole genome exon array
Paul J Gardina1, Tyson A Clark, Brian Shimada
1Affymetrix, Inc., Santa Clara, CA 95051, USA. Paul_Gardina@Affymetrix.com <Paul_Gardina@Affymetrix.com>
Background:
Alternative splicing is a mechanism for increasing protein diversity by excluding or including exons during post-transcriptional processing. Alternatively spliced proteins are particularly relevant in oncology since they may contribute to the etiology of cancer, provide selective drug targets, or serve as a marker set for cancer diagnosis. While conventional identification of splice variants generally targets individual genes, we present here a new exon-centric array (GeneChip Human Exon 1.0 ST) that allows genome-wide identification of differential splice variation, and concurrently provides a flexible and inclusive analysis of gene expression.
Results:
We analyzed 20 paired tumor-normal colon cancer samples using a microarray designed to detect over one million putative exons that can be virtually assembled into potential gene-level transcripts according to various levels of prior supporting evidence. Analysis of high confidence (empirically supported) transcripts identified 160 differentially expressed genes, with 42 genes occupying a network impacting cell proliferation and another twenty nine genes with unknown functions. A more speculative analysis, including transcripts based solely on computational prediction, produced another 160 differentially expressed genes, three-fourths of which have no previous annotation. We also present a comparison of gene signal estimations from the Exon 1.0 ST and the U133 Plus 2.0 arrays. Novel splicing events were predicted by experimental algorithms that compare the relative contribution of each exon to the cognate transcript intensity in each tissue. The resulting candidate splice variants were validated with RT-PCR. We found nine genes that were differentially spliced between colon tumors and normal colon tissues, several of which have not been previously implicated in cancer. Top scoring candidates from our analysis were also found to substantially overlap with EST-based bioinformatic predictions of alternative splicing in cancer.
Conclusion:
Differential expression of high confidence transcripts correlated extremely well with known cancer genes and pathways, suggesting that the more speculative transcripts, largely based solely on computational prediction and mostly with no previous annotation, might be novel targets in colon cancer. Five of the identified splicing events affect mediators of cytoskeletal organization (ACTN1, VCL, CALD1, CTTN, TPM1), two affect extracellular matrix proteins (FN1, COL6A3) and another participates in integrin signaling (SLC3A2). Altogether they form a pattern of colon-cancer specific alterations that may particularly impact cell motility.
Insights
This study introduces an exon-centric array for genome-wide splice variation analysis in colon cancer. It identified novel differentially spliced genes, potentially impacting cell motility and offering new diagnostic and therapeutic targets.
Area of Science:
- Genomics
- Molecular Biology
- Oncology
Background:
- Alternative splicing generates protein diversity, crucial in cancer for etiology, drug targets, and diagnostics.
- Conventional splice variant identification targets individual genes, limiting comprehensive analysis.
Purpose of the Study:
- To present a novel exon-centric array for genome-wide identification of differential splice variation.
- To analyze splice variants in paired colon tumor and normal tissues.
- To identify novel splice variants and potential cancer targets.
Main Methods:
- Utilized an exon-centric microarray (GeneChip Human Exon 1.0 ST) for genome-wide splice variation analysis.
- Analyzed 20 paired colon cancer samples.
- Validated novel splicing events using RT-PCR.
Main Results:
- Identified 160 differentially expressed genes from high-confidence transcripts, with networks impacting cell proliferation.
- Discovered nine genes with differential splicing between colon tumors and normal tissues, including novel cancer-related genes.
- Found significant overlap between array-predicted splice variants and bioinformatic predictions.
Conclusions:
- High-confidence transcript expression correlated with known cancer pathways, suggesting speculative transcripts may be novel targets.
- Identified splice variants in genes affecting cytoskeletal organization, extracellular matrix, and integrin signaling.
- These alterations may specifically impact colon cancer cell motility.
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