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Updated: Sep 21, 2025

A Reporter Assay to Analyze Intronic microRNA Maturation in Mammalian Cells
Published on: June 16, 2022
HNRNPH1 destabilizes the G-quadruplex structures formed by G-rich RNA sequences that regulate the alternative
Tam Vo1, Tayvia Brownmiller1, Katherine Hall1
1Functional Genetics Section, Genetics Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
In the presence of physiological monovalent cations, thousands of RNA G-rich sequences can form parallel G-quadruplexes (G4s) unless RNA-binding proteins inhibit, destabilize, or resolve the formation of such secondary RNA structures. Here, we have used a disease-relevant model system to investigate the biophysical properties of the RNA-binding protein HNRNPH1's interaction with G-rich sequences. We demonstrate the importance of two EWSR1-exon 8 G-rich regions in mediating the exclusion of this exon from the oncogenic EWS-FLI1 transcripts expressed in a subset of Ewing sarcomas, using complementary analysis of tumor data, long-read sequencing, and minigene studies. We determined that HNRNPH1 binds the EWSR1-exon 8 G-rich sequences with low nM affinities irrespective of whether in a non-G4 or G4 state but exhibits different kinetics depending on RNA structure. Specifically, HNRNPH1 associates and dissociates from G4-folded RNA faster than the identical sequences in a non-G4 state. Importantly, we demonstrate using gel shift and spectroscopic assays that HNRNPH1, particularly the qRRM1-qRRM2 domains, destabilizes the G4s formed by the EWSR1-exon 8 G-rich sequences in a non-catalytic fashion. Our results indicate that HNRNPH1's binding of G-rich sequences favors the accumulation of RNA in a non-G4 state and that this contributes to its regulation of RNA processing.
Insights
The RNA-binding protein HNRNPH1 destabilizes G-rich RNA structures called G-quadruplexes (G4s). This interaction is crucial for regulating RNA processing and excluding specific exons in certain cancers.
Area of Science:
- Molecular Biology
- Biophysics
- RNA Biology
Background:
- Thousands of RNA G-rich sequences form G-quadruplexes (G4s) in physiological conditions.
- RNA-binding proteins can inhibit, destabilize, or resolve G4 formation.
- HNRNPH1 is an RNA-binding protein implicated in RNA processing.
Purpose of the Study:
- Investigate the biophysical properties of HNRNPH1's interaction with G-rich sequences.
- Determine HNRNPH1's role in regulating EWSR1-exon 8 splicing in Ewing sarcoma.
- Elucidate the mechanism by which HNRNPH1 affects G4 structures.
Main Methods:
- Analysis of tumor data
- Long-read sequencing
- Minigene studies
- Gel shift assays
- Spectroscopic assays
Main Results:
- HNRNPH1 binds EWSR1-exon 8 G-rich sequences with low nM affinity, regardless of G4 formation.
- HNRNPH1 exhibits faster association and dissociation kinetics with G4-folded RNA compared to non-G4 RNA.
- HNRNPH1, particularly its qRRM1-qRRM2 domains, non-catalytically destabilizes G4 structures.
- HNRNPH1 binding favors RNA accumulation in a non-G4 state.
Conclusions:
- HNRNPH1 plays a critical role in the exclusion of EWSR1-exon 8 from EWS-FLI1 transcripts in Ewing sarcoma.
- HNRNPH1's destabilization of G4 structures contributes to its regulation of RNA processing.
- The biophysical interaction of HNRNPH1 with G-rich sequences is key to its regulatory function.
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