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Updated: Jun 10, 2026

Exploring Sequence Space to Identify Binding Sites for Regulatory RNA-Binding Proteins
Published on: August 9, 2019
RNA-binding protein transcripts reflect composition of target mRNAs
Thomas H Kapral1,2,3, Bojan Žagrović1,2
1Max Perutz Labs, Vienna BioCenter, 1030 Vienna, Austria.
Abstract:
RNA-protein interactions are central to gene regulation, yet the large-scale organization of RNA-protein networks remains incompletely understood. Using a comprehensive human eCLIP dataset encompassing interactions between 150 RNA-binding proteins (RBPs) and >11 000 mRNAs, we identify a robust organizing principle underlying the RNA-protein network structure: mRNAs preferentially associate with RBPs whose own encoding transcripts share similar nucleotide composition. In other words, mRNAs enriched in a given nucleotide tend to be targeted by RBPs whose own transcripts are likewise enriched in that nucleotide and vice versa. This global pattern holds for all four RNA nucleotides, remains statistically significant after controlling for transcript length, expression levels and sequence-motif-driven interactions, and is confirmed by in vitro HTR-SELEX data. We use the observed relationship to rationalize the spatial organization of mRNAs in the nucleus i.e. the known G/C gradient towards nuclear speckles. Notably, an mRNA's propensity toward RBPs rich in arginine, which is predominantly encoded by and preferentially binds guanine, is a strong predictor of its speckle enrichment. Our findings highlight a fundamental link between coding and binding in biology and suggest that mRNA composition biases provide a fundamental layer of specificity in shaping the global RNA-protein interaction network.
Insights
Messenger RNAs (mRNAs) preferentially bind to RNA-binding proteins (RBPs) with similar nucleotide compositions in their own transcripts. This RNA composition bias shapes global RNA-protein networks and nuclear mRNA organization.
Area of Science:
- Molecular Biology
- Genomics
- Biochemistry
Background:
- RNA-protein interactions are crucial for gene regulation.
- The large-scale organization of RNA-protein networks is not fully understood.
Purpose of the Study:
- To investigate the organizing principles of RNA-protein networks.
- To understand how nucleotide composition influences RNA-protein interactions and mRNA localization.
Main Methods:
- Analysis of a comprehensive human eCLIP dataset (>11,000 mRNAs, 150 RBPs).
- Statistical analysis controlling for transcript length, expression, and sequence motifs.
- Validation using in vitro HTR-SELEX data.
Main Results:
- mRNAs associate with RBPs whose transcripts share similar nucleotide composition.
- This pattern holds across all four nucleotides and is statistically significant.
- Nucleotide composition predicts mRNA enrichment in nuclear speckles, particularly guanine-rich transcripts and arginine-binding RBPs.
Conclusions:
- mRNA nucleotide composition is a fundamental organizing principle of RNA-protein networks.
- Compositional bias provides specificity in RNA-protein interactions and influences nuclear mRNA organization.
- A link exists between RNA coding and binding, mediated by nucleotide composition.
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