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Detection of statistically robust interactions from diverse RNA-DNA ligation data [nucRNA-seq]

GSE273207 Homo sapiens Expression profiling by high throughput sequencing 6 samples Submitted 2025/08/01 Platform GPL18573
Summary
Chromatin-localized RNAs play diverse roles in gene regulation and nuclear architecture. Mapping genome-wide RNA-DNA interactions is possible using a variety of molecular methods, including using bridging oligonucleotides to ligate RNA and DNA in proximity. While molecular methods have progressed, a robust computational method for calling biologically meaningful RNA-DNA interactions from these data is lacking. Herein, we present RADIAnT, a reads-to-interactions pipeline for analyzing RNA-DNA ligation data. RADIAnT calls interactions against a dataset-specific, unified background which considers RNA binding site-TSS distance and genomic region bias. By scaling the background with RNA abundance, RADIAnT is sensitive enough to detect specific interactions of lowly expressed transcripts, while remaining specific enough to discount false positive interactions of highly abundant RNAs. RADIAnT outperforms previously proposed methods in the accurate recall of genome-wide Malat1-DNA interactions, and in a use-case, was utilized to identify dynamic chromatin-associated RNAs in the physiologically- and pathlologically-relevant process of endothelial-to-mesenchymal transition.
Published in
Improved RNA-DNA interaction calling suggests RNA-based gene regulation of phenotypic transitions
Zehr S, Seredinski S, Pálfi K et al. · Nucleic acids research 2026 · PMID 42258536 · doi:10.1093/nar/gkag304
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Also filed as BioProject PRJNA1140602 and SRA study SRP522486. Searching any of these in the dataset finder brings you back here.

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