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Updated: Jun 15, 2025

Characterization of Functionally Associated miRNAs in Glioblastoma and their Engineering into Artificial Clusters for Gene Therapy
Published on: October 4, 2019
Leveraging multi-omics data to infer regulators of mRNA 3' end processing in glioblastoma
Aleksei Mironov1, Lorenzo Franchitti2, Shreemoyee Ghosh1
1Biozentrum, University of Basel, Basel, Switzerland.
Abstract:
Alterations in mRNA 3' end processing and polyadenylation are widely implicated in the biology of many cancer types, including glioblastoma (GBM), one the most aggressive tumor types. Although several RNA-binding proteins (RBPs) responsible for alternative polyadenylation (APA) were identified from functional studies in cell lines, their contribution to the APA landscape in tumors in vivo was not thoroughly addressed. In this study we analyzed a large RNA-seq data set of glioblastoma (GBM) samples from The Cancer Genome Atlas (TCGA) to identify APA patterns differentiating the main molecular subtypes of GBM. We superimposed these to RBP footprinting data and to APA events occurring upon depletion of individual RBPs from a large panel tested by the ENCODE Consortium. Our analysis revealed 22 highly concordant and statistically significant RBP-APA associations, whereby changes in RBP expression were accompanied by APA in both TCGA and ENCODE datasets. Among these, we found a previously unknown PTBP1-regulated APA event in the PRRC2B gene and an HNRNPU-regulated event in the SC5D gene. Both of these were further supported by RNA-sequencing data of paired tumor center-periphery GBM samples obtained at the University Hospital of Basel. In addition, we validated the regulation of APA in PRRC2B by PTBP1 in siRNA-knockdown and overexpression experiments followed by RNA-sequencing in two glioblastoma cell lines. The transcriptome analysis workflow that we present here enables the identification of concordant RBP-APA associations in cancers.
Insights
This study identifies RNA-binding protein (RBP) associations with alternative polyadenylation (APA) in glioblastoma (GBM) tumors. It reveals new RBP-APA links, offering insights into cancer biology and potential therapeutic targets.
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- Alternative polyadenylation (APA) and mRNA 3' end processing are crucial in cancer biology, particularly in aggressive glioblastoma (GBM).
- Previous studies identified RNA-binding proteins (RBPs) involved in APA in cell lines, but their in vivo relevance in tumors remained unclear.
Purpose of the Study:
- To identify APA patterns distinguishing GBM molecular subtypes using The Cancer Genome Atlas (TCGA) data.
- To establish concordant associations between RBP expression and APA events in GBM tumors.
Main Methods:
- Analysis of a large RNA-sequencing dataset from TCGA GBM samples.
- Integration of RBP footprinting data and APA events from ENCODE Consortium experiments.
- Validation using paired tumor center-periphery samples and cell line experiments (siRNA knockdown, overexpression).
Main Results:
- Identified 22 statistically significant and concordant RBP-APA associations across TCGA and ENCODE datasets.
- Discovered novel PTBP1-regulated APA in PRRC2B and HNRNPU-regulated APA in SC5D.
- Validated PTBP1's regulation of PRRC2B APA in glioblastoma cell lines.
Conclusions:
- The developed transcriptome analysis workflow effectively identifies concordant RBP-APA associations in cancer.
- These findings provide new insights into the molecular mechanisms of glioblastoma and highlight potential RBP targets for therapeutic intervention.
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