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Isolation of Cognate RNA-protein Complexes from Cells Using Oligonucleotide-directed Elution
Published on: January 16, 2017
The core microprocessor component DiGeorge syndrome critical region 8 (DGCR8) is a nonspecific RNA-binding protein
Braden M Roth1, Daniella Ishimaru, Mirko Hennig
1From the Department of Biochemistry and Molecular Biology, Medical University of South Carolina, Charleston, South Carolina 29425.
Abstract:
MicroRNA (miRNA) biogenesis follows a conserved succession of processing steps, beginning with the recognition and liberation of an miRNA-containing precursor miRNA hairpin from a large primary miRNA transcript (pri-miRNA) by the Microprocessor, which consists of the nuclear RNase III Drosha and the double-stranded RNA-binding domain protein DGCR8 (DiGeorge syndrome critical region protein 8). Current models suggest that specific recognition is driven by DGCR8 detection of single-stranded elements of the pri-miRNA stem-loop followed by Drosha recruitment and pri-miRNA cleavage. Because countless RNA transcripts feature single-stranded-dsRNA junctions and DGCR8 can bind hundreds of mRNAs, we explored correlations between RNA binding properties of DGCR8 and specific pri-miRNA substrate processing. We found that DGCR8 bound single-stranded, double-stranded, and random hairpin transcripts with similar affinity. Further investigation of DGCR8/pri-mir-16 interactions by NMR detected intermediate exchange regimes over a wide range of stoichiometric ratios. Diffusion analysis of DGCR8/pri-mir-16 interactions by pulsed field gradient NMR lent further support to dynamic complex formation involving free components in exchange with complexes of varying stoichiometry, although in vitro processing assays showed exclusive cleavage of pri-mir-16 variants bearing single-stranded flanking regions. Our results indicate that DGCR8 binds RNA nonspecifically. Therefore, a sequential model of DGCR8 recognition followed by Drosha recruitment is unlikely. Known RNA substrate requirements are broad and include 70-nucleotide hairpins with unpaired flanking regions. Thus, specific RNA processing is likely facilitated by preformed DGCR8-Drosha heterodimers that can discriminate between authentic substrates and other hairpins.
Insights
DGCR8 protein binds RNA nonspecifically, challenging models of microRNA (miRNA) processing. Specificity likely arises from preformed DGCR8-Drosha enzyme complexes, not sequential recognition.
Area of Science:
- Molecular Biology
- RNA Biology
- Biochemistry
Background:
- MicroRNA (miRNA) biogenesis involves processing primary miRNA transcripts (pri-miRNA) by the Microprocessor complex.
- The Microprocessor includes Drosha and DGCR8 (DiGeorge syndrome critical region protein 8).
- Current models propose DGCR8 recognizes single-stranded RNA elements for Drosha-mediated cleavage.
Purpose of the Study:
- To investigate the RNA binding properties of DGCR8.
- To explore the correlation between DGCR8's RNA binding and pri-miRNA substrate processing.
- To refine models of miRNA biogenesis initiation.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy (including pulsed field gradient NMR) to study DGCR8/pri-mir-16 interactions.
- In vitro processing assays using pri-mir-16 variants.
- Analysis of DGCR8 binding affinities to various RNA structures.
Main Results:
- DGCR8 binds single-stranded, double-stranded, and hairpin RNA with similar affinity, indicating non-specific binding.
- NMR studies revealed dynamic complex formation between DGCR8 and pri-mir-16.
- In vitro assays showed processing only occurred for pri-mir-16 with single-stranded flanking regions.
Conclusions:
- The sequential model of DGCR8 recognition followed by Drosha recruitment is unlikely due to DGCR8's non-specific RNA binding.
- Specific pri-miRNA processing is likely mediated by preformed DGCR8-Drosha heterodimers.
- These heterodimers possess the discriminatory capacity for authentic miRNA substrates.
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