Conformational Effects of a Cancer-Linked Mutation in Pri-miR-30c RNA
Alisha N Jones1, Andreas Walbrun2, Fabio Falleroni2
1Institute of Structural Biology, Helmholtz Zentrum München, Neuherberg, Germany; Bavarian NMR Center, Department of Chemistry, Technical University of Munich, Garching, Germany.
Abstract:
MicroRNAs (miRNAs) are small, noncoding RNAs that mediate post-transcriptional downregulation of specific target genes. These transcripts are the products of a two-step processing pathway; primary miRNAs (pri-miRNAs) are processed by Drosha into individual precursor miRNA (pre-miRNA) hairpins, which are subsequently processed by Dicer into mature miRNAs. Single nucleotide polymorphisms (SNPs) that occur in pri-miRNAs, pre-miRNAs and mature miRNAs have been shown to affect the processing of specific target genes by modulating Drosha and Dicer processing or interactions with RNA binding proteins (RBPs). Using NMR and single-molecule optical tweezer experiments, we have investigated the conformational effects of a cancer-linked G/A mutation in the terminal loop of pri-miR-30c RNA, and how this influences binding by the SRSF3 and hnRNP A1 RBPs, which are implicated in its processing. Our results reveal that the wildtype and G/A variant pri-miR-30c RNAs adopt very similar elongated stem-loop structures, both of which are bound by SRSF3. However, while both wildtype and G/A pri-miR-30c RNAs can form dimeric kissing hairpin structures, the G to A mutation results in partial destabilization of the dimer in the variant transcript. This promotes recognition and binding by hnRNP A1, an RBP that enhances pri-miR-30c processing. Our data provide structural insight into the conformational effects of a G/A mutation in pri-miR-30c RNA and how this could affect processing and promote cancer.
Insights
A cancer-linked mutation in pri-miR-30c RNA alters its structure, affecting binding by RNA binding proteins (RBPs) and potentially promoting cancer progression. This study reveals how specific mutations influence microRNA processing.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- MicroRNAs (miRNAs) are small, noncoding RNAs regulating gene expression post-transcriptionally.
- miRNA biogenesis involves Drosha and Dicer processing of primary (pri-) and precursor (pre-) miRNAs.
- Single nucleotide polymorphisms (SNPs) in miRNA genes can alter processing and gene regulation.
Purpose of the Study:
- To investigate the structural and functional impact of a cancer-associated G/A mutation in pri-miR-30c.
- To determine how this mutation affects the binding of RNA binding proteins (RBPs) SRSF3 and hnRNP A1.
- To elucidate the role of these interactions in pri-miR-30c processing and potential cancer links.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy to analyze RNA structure.
- Single-molecule optical tweezer experiments to study RNA-RBP interactions.
- Biochemical assays to assess RBP binding and processing efficiency.
Main Results:
- Wildtype and mutated pri-miR-30c RNAs exhibit similar stem-loop structures and bind SRSF3.
- The G/A mutation partially destabilizes the dimeric kissing hairpin structure of pri-miR-30c.
- hnRNP A1 binding is enhanced in the mutated pri-miR-30c, promoting its processing.
Conclusions:
- The G/A mutation in pri-miR-30c induces conformational changes affecting RBP binding.
- Altered RBP interactions due to the mutation can modulate miRNA processing efficiency.
- These findings provide structural insights into how pri-miR-30c mutations may contribute to cancer development.
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