Related Experiment Video
Updated: May 8, 2026

Using RNA-sequencing to Detect Novel Splice Variants Related to Drug Resistance in In Vitro Cancer Models
Published on: December 9, 2016
High-resolution detection of RPS24 microexon variations reveals novel splicing patterns in response to KRAS-targeted
Dahye Nam1, Bin Tian2, Jiyeon Park3
1Department of Microbiology, College of Medicine, The Catholic University of Korea, Seoul 06591, Korea.
Abstract:
Alternative splicing (AS) dysregulation is increasingly recognized as a critical factor in cancer progression and drug response. However, precisely detecting and characterizing complex splicing events, particularly those involving microexons, remains technically challenging. Ribosomal Protein 24 (RPS24), which contains three microexons (3, 18, and 22 bp), serves as an ideal model for studying complex AS regulation in cancer. We developed a high-resolution detection method for RPS24 microexon variations and investigate their relationship with KRAS proto-oncogene, GTPase (KRAS) inhibition in lung adenocarcinoma (LUAD) to identify potential biomarkers for KRAS-targeted inhibitors. We established an integrated methodological approach combining RNA-seq analysis with fragment analysis to detect RPS24 AS patterns. Using this method, we analyzed RPS24 AS across a panel of lung cancer cell lines and examined AS changes in KRAS-mutant cell lines following treatment with KRAS inhibitors. Our method successfully characterized distinct RPS24 AS isoform compositions across lung cancer cell lines, demonstrating high accuracy in detecting 3 bp variations. In KRASmutant cell lines, we observed a consistent upregulation of the 3 bp-containing isoform following KRAS inhibition, indicating a specific correlation with treatment response. This study provides a robust methodology for analyzing complex AS events and supports the RPS24 3 bp-containing isoform as a potential biomarker for KRAS inhibitor response in LUAD. These findings offer new insights into the molecular mechanisms of KRAS inhibitor therapy and strategies for monitoring treatment response. [BMB Reports 2025; 58(6): 244-249].
Insights
We developed a new method to detect alternative splicing (AS) variations in Ribosomal Protein 24 (RPS24) microexons. The RPS24 3 bp isoform may serve as a biomarker for KRAS inhibitor response in lung cancer.
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- Alternative splicing (AS) dysregulation is crucial in cancer progression and drug response.
- Detecting complex splicing events, especially microexons, is technically challenging.
- Ribosomal Protein 24 (RPS24) with its microexons is a model for studying AS in cancer.
Purpose of the Study:
- Develop a high-resolution method for RPS24 microexon variation detection.
- Investigate the relationship between RPS24 AS and KRAS inhibition in lung adenocarcinoma (LUAD).
- Identify potential biomarkers for KRAS-targeted inhibitors.
Main Methods:
- Integrated RNA-seq and fragment analysis for RPS24 AS patterns.
- Analysis of RPS24 AS in lung cancer cell lines.
- Examination of AS changes in KRAS-mutant cell lines after KRAS inhibitor treatment.
Main Results:
- Successfully characterized RPS24 AS isoform compositions with high accuracy for 3 bp variations.
- Observed consistent upregulation of the RPS24 3 bp isoform in KRAS-mutant cell lines post-KRAS inhibition.
- Demonstrated a specific correlation between the 3 bp isoform and treatment response.
Conclusions:
- Established a robust methodology for analyzing complex AS events.
- The RPS24 3 bp-containing isoform is a potential biomarker for KRAS inhibitor response in LUAD.
- Provided insights into KRAS inhibitor therapy mechanisms and treatment monitoring.
More Related Videos
08:23Single Droplet Digital Polymerase Chain Reaction for Comprehensive and Simultaneous Detection of Mutations in Hotspot Regions
Published on: September 25, 2018
10:57Visualizing Genetic Variants, Short Targets, and Point Mutations in the Morphological Tissue Context with an RNA In Situ Hybridization Assay
Published on: August 14, 2018