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Updated: Dec 3, 2025

CRISPR Gene Editing Tool for MicroRNA Cluster Network Analysis
Published on: April 25, 2022
RNA editing in cancer impacts mRNA abundance in immune response pathways
Tracey W Chan1, Ting Fu2, Jae Hoon Bahn3
1Bioinformatics Interdepartmental Program, UCLA, Los Angeles, CA, USA.
Background:
RNA editing generates modifications to the RNA sequences, thereby increasing protein diversity and shaping various layers of gene regulation. Recent studies have revealed global shifts in editing levels across many cancer types, as well as a few specific mechanisms implicating individual sites in tumorigenesis or metastasis. However, most tumor-associated sites, predominantly in noncoding regions, have unknown functional relevance.
Results:
Here, we carry out integrative analysis of RNA editing profiles between epithelial and mesenchymal tumors, since epithelial-mesenchymal transition is a key paradigm for metastasis. We identify distinct editing patterns between epithelial and mesenchymal tumors in seven cancer types using TCGA data, an observation further supported by single-cell RNA sequencing data and ADAR perturbation experiments in cell culture. Through computational analyses and experimental validations, we show that differential editing sites between epithelial and mesenchymal phenotypes function by regulating mRNA abundance of their respective genes. Our analysis of RNA-binding proteins reveals ILF3 as a potential regulator of this process, supported by experimental validations. Consistent with the known roles of ILF3 in immune response, epithelial-mesenchymal differential editing sites are enriched in genes involved in immune and viral processes. The strongest target of editing-dependent ILF3 regulation is the transcript encoding PKR, a crucial player in immune and viral response.
Conclusions:
Our study reports widespread differences in RNA editing between epithelial and mesenchymal tumors and a novel mechanism of editing-dependent regulation of mRNA abundance. It reveals the broad impact of RNA editing in cancer and its relevance to cancer-related immune pathways.
Insights
RNA editing patterns differ between epithelial and mesenchymal tumors, impacting gene regulation and mRNA abundance. This study identifies ILF3 as a key regulator, highlighting RNA editing
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- RNA editing modifies RNA sequences, enhancing protein diversity and gene regulation.
- Global shifts in RNA editing levels are observed in many cancer types.
- The functional relevance of most tumor-associated RNA editing sites, particularly in noncoding regions, remains largely unknown.
Purpose of the Study:
- To investigate distinct RNA editing profiles between epithelial and mesenchymal tumors.
- To elucidate the functional relevance of differential RNA editing in cancer metastasis.
- To identify regulatory mechanisms and key players involved in epithelial-mesenchymal transition-associated RNA editing.
Main Methods:
- Integrative analysis of RNA editing profiles from The Cancer Genome Atlas (TCGA) data.
- Utilizing single-cell RNA sequencing data and ADAR perturbation experiments.
- Employing computational analyses and experimental validations to assess functional impact and regulatory interactions.
Main Results:
- Identified distinct RNA editing patterns between epithelial and mesenchymal tumors across seven cancer types.
- Demonstrated that differential RNA editing sites regulate mRNA abundance of associated genes.
- Revealed ILF3 as a potential regulator of epithelial-mesenchymal differential editing, particularly affecting PKR transcript levels.
Conclusions:
- Widespread differences in RNA editing exist between epithelial and mesenchymal tumors.
- A novel mechanism of editing-dependent mRNA abundance regulation was discovered.
- RNA editing significantly impacts cancer, especially in relation to immune and viral response pathways.
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