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Updated: Nov 30, 2025

A Reporter Assay to Analyze Intronic microRNA Maturation in Mammalian Cells
Published on: June 16, 2022
Functional Atlas of Primary miRNA Maturation by the Microprocessor
Greggory M Rice1, Varun Shivashankar1, Eric J Ma1
1Novartis Institutes for Biomedical Research, 250 Massachusetts Avenue, Cambridge, MA 02139, USA.
Abstract:
Primary microRNAs (miRNAs) are the precursors of miRNAs that modulate the expression of most mRNAs in humans. They fold up into a hairpin structure that is cleaved at its base by an enzyme complex known as the Microprocessor (Drosha/DGCR8). While many of the molecular details are known, a complete understanding of what features distinguish primary miRNA from hairpin structures in other transcripts is still lacking. We develop a massively parallel functional assay termed Dro-seq (Drosha sequencing) that enables testing of hundreds of known primary miRNA substrates and thousands of single-nucleotide variants. We find an additional feature of primary miRNAs, called Shannon entropy, describing the structural ensemble important for processing. In a deep mutagenesis experiment, we observe particular apical loop U bases, likely recognized by DGCR8, are important for efficient processing. These findings build on existing knowledge about primary miRNA maturation by the Microprocessor and further explore the substrate RNA sequence-structure relationship.
Insights
Researchers developed Dro-seq to analyze primary microRNAs (miRNAs). They discovered Shannon entropy and specific apical loop bases are crucial for miRNA processing by the Microprocessor complex.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Primary microRNAs (miRNAs) are precursor molecules essential for gene expression regulation in humans.
- The Microprocessor complex (Drosha/DGCR8) processes primary miRNAs into mature miRNAs through hairpin structure cleavage.
- Key features distinguishing primary miRNA hairpins from other non-coding RNAs remain incompletely understood.
Purpose of the Study:
- To investigate the molecular features governing primary miRNA recognition and processing by the Microprocessor complex.
- To develop a high-throughput assay for functional analysis of primary miRNA substrates and sequence variants.
- To elucidate the sequence-structure relationship critical for efficient miRNA biogenesis.
Main Methods:
- Development and application of Dro-seq (Drosha sequencing), a massively parallel functional assay.
- Testing of numerous known primary miRNA substrates and thousands of single-nucleotide variants.
- Deep mutagenesis experiments to probe sequence-structure requirements for processing.
Main Results:
- Identification of Shannon entropy as an important feature of primary miRNA structural ensembles for processing.
- Discovery that specific apical loop uracil (U) bases are critical for efficient processing, likely via DGCR8 recognition.
- Characterization of novel sequence-structure determinants for Microprocessor complex activity.
Conclusions:
- Shannon entropy and apical loop U bases represent key features influencing primary miRNA processing.
- The findings provide a deeper understanding of the substrate specificity of the Microprocessor complex.
- This work advances knowledge of miRNA biogenesis and RNA sequence-structure relationships.
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