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Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
RPS24 microexon isoform as a novel biomarker for estrogen receptor-positive breast cancer progression and therapeutic
Jiyeon Park1, Dahye Nam2, Seung-Hyun Jung3,4
1Precision Medicine Research Center, College of Medicine, The Catholic University of Korea, Seoul, Republic of Korea.
Abstract:
Alternative splicing significantly contributes to gene expression heterogeneity and disease progression, yet analyzing its dynamics in short genetic regions such as microexons remains challenging. Here we identified notable variations in ribosomal protein S24 (RPS24) splicing patterns across breast cancer subtypes and investigated this novel regulatory mechanism. To overcome the complexity of analyzing three consecutive microexons (3 bp, 18 bp and 22 bp), we developed a specialized approach combining splice junction read analysis with fragment analysis for accurate isoform quantification. We observed distinct isoform compositions across breast cancer cell lines. The 3-bp exon-containing isoform (ex4:3 bp) of RPS24 showed significantly higher expression in estrogen receptor-positive (ER+) cells, demonstrating the strongest association with estrogen receptor signaling among all analyzed genes. This isoform functions as a molecular sensor for therapeutic interventions, being consistently upregulated following mTOR or CDK4/6 inhibition but consistently reduced across diverse drug-resistant cell lines, regardless of resistance mechanism. Through systematic RNA-binding protein screening and crosslinking immunoprecipitation followed by high-throughput sequencing analysis, we identified PTBP1 as a critical upstream regulator mediating microexon skipping. Analysis of multiple patient cohorts demonstrated that decreased ex4:3 bp expression strongly correlated with poor epithelial differentiation and metastatic progression specifically in ER+ breast cancer. Our findings suggest that RPS24 alternative splicing is associated with a multilayered regulatory network integrating ER signaling, cell cycle and PTBP1-mediated splicing. The ex4:3 bp isoform serves as a potential biomarker for drug resistance and treatment response in ER+ breast cancer.
Insights
Alternative splicing of ribosomal protein S24 (RPS24) microexons varies in breast cancer. A specific RPS24 isoform (ex4:3bp) acts as a sensor for drug response and is linked to poor outcomes in estrogen receptor-positive breast cancer.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Alternative splicing drives gene expression diversity and disease.
- Analyzing microexon splicing dynamics, especially in short genetic regions, presents challenges.
- Ribosomal protein S24 (RPS24) splicing variations in breast cancer are not well understood.
Purpose of the Study:
- To investigate novel regulatory mechanisms of RPS24 alternative splicing in breast cancer subtypes.
- To develop and apply a specialized method for accurate quantification of RPS24 microexon isoforms.
- To identify upstream regulators and clinical relevance of RPS24 splicing.
Main Methods:
- Developed a specialized approach combining splice junction and fragment analysis for microexon isoform quantification.
- Conducted RNA-binding protein screening and crosslinking immunoprecipitation followed by high-throughput sequencing.
- Analyzed splicing patterns in breast cancer cell lines and patient cohorts.
Main Results:
- Identified distinct RPS24 isoform compositions across breast cancer cell lines.
- The RPS24 ex4:3bp isoform was highly expressed in estrogen receptor-positive (ER+) cells and linked to ER signaling.
- This isoform responded to therapeutic interventions, decreased in drug-resistant cells, and was regulated by PTBP1.
- Decreased ex4:3bp expression correlated with poor differentiation and metastasis in ER+ breast cancer.
Conclusions:
- RPS24 alternative splicing is linked to ER signaling, cell cycle, and PTBP1-mediated splicing in ER+ breast cancer.
- The RPS24 ex4:3bp isoform may serve as a biomarker for drug resistance and treatment response.
- This study highlights a novel regulatory network impacting breast cancer progression and therapeutic outcomes.

