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Updated: Aug 20, 2026

Mapping RNA-RNA Interactions Globally Using Biotinylated Psoralen
Published on: May 24, 2017
A new dimension in protein-RNA interface prediction: Integrating protein language models and geometric deep learning
Rozeena Arif1, Alfredo Castello1
1MRC Centre for Virus Research, School of Infection and Immunity, University of Glasgow, UK.
None:
RNA-binding proteins (RBPs) are essential across biology, from viruses to complex multicellular organisms. They regulate gene expression and cellular responses, making RNA recognition central to understanding health and disease. Biochemical, biophysical, and structural studies have defined core principles of RNA binding, but recent RNA interactome surveys have expanded the RBP repertoire and revealed many noncanonical RNA-binding regions. This diversity demands highly scalable predictive methods. Here, we review machine learning predictors built on protein language models and structure-aware representations. These approaches improve generalisability, reduce reliance on deep evolutionary information, and enable proteome-scale prediction of RNA-binding residues, providing a route to map and interpret the molecular logic of protein-RNA interactions.
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