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Updated: Jun 17, 2026

A Bioinformatics Pipeline to Accurately and Efficiently Analyze the MicroRNA Transcriptomes in Plants
Published on: January 21, 2020
Identification of microRNA processing determinants by random mutagenesis of Arabidopsis MIR172a precursor
Julieta L Mateos1, Nicolás G Bologna, Uciel Chorostecki
1Instituto de Biología Molecular y Celular de Rosario, Suipacha 531, 2000 Rosario, Argentina.
Abstract:
MicroRNAs (miRNAs) are widespread posttranscriptional regulators of gene expression. They are processed from longer primary transcripts that contain foldback structures (reviewed in). In animals, a complex formed by Drosha and DGCR8/Pasha recognizes the transition between the single-stranded RNA sequences and the stem loop to produce the first cleavage step in miRNA biogenesis. Whereas animal precursors are of uniform size and shape, their plant counterparts comprise a collection of variable stem loops, and little is known about the structural clues recognized during their processing. Here, we designed an unbiased approach based on the random mutagenesis of the MIR172a precursor to study miRNA processing in plants. Randomly mutated precursors were overexpressed in Arabidopsis, and their activity was determined in vivo. We gathered sequence data from these transgenes and used it to build a MIR172a precursor map highlighting relevant and neutral positions for its processing. A 15 nucleotide stem segment below the miRNA/miRNA(*) duplex was essential for MIR172a processing. In contrast, mutations in the terminal-loop region were mostly neutral, yet a loop was required for miR172 biogenesis. The results could be extended to other precursors, suggesting the existence of common features in at least part of the plant precursors.
Insights
Plant microRNA (miRNA) processing relies on specific structural features. A 15-nucleotide stem segment below the miRNA duplex is essential for MIR172a precursor processing in Arabidopsis.
Area of Science:
- Molecular Biology
- Plant Science
- Genetics
Background:
- MicroRNAs (miRNAs) are crucial gene regulators processed from precursor transcripts.
- Animal miRNA biogenesis involves specific protein complexes recognizing precursor structures.
- Plant miRNA precursors exhibit structural variability, with processing clues largely unknown.
Purpose of the Study:
- To investigate the structural requirements for plant miRNA precursor processing.
- To identify key sequence and structural elements essential for MIR172a biogenesis in Arabidopsis.
Main Methods:
- Designed an unbiased random mutagenesis approach targeting the MIR172a precursor.
- Overexpressed mutated precursors in Arabidopsis and assessed miRNA activity in vivo.
- Analyzed sequence data to map functionally relevant and neutral positions in the precursor.
Main Results:
- Identified a 15-nucleotide stem segment crucial for MIR172a processing.
- Mutations in the terminal-loop region were largely neutral, but a loop structure was necessary.
- Developed a precursor map highlighting critical and non-critical regions for processing.
Conclusions:
- A specific stem segment is essential for MIR172a processing in plants.
- Plant miRNA precursor processing may share common structural features.
- This study provides insights into the structural basis of plant miRNA biogenesis.
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