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.

PubMed

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.

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