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Published on: August 22, 2019
TRUB1 is the predominant pseudouridine synthase acting on mammalian mRNA via a predictable and conserved code
Modi Safra1, Ronit Nir1, Daneyal Farouq2
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
Following synthesis, RNA can be modified with over 100 chemically distinct modifications, which can potentially regulate RNA expression post-transcriptionally. Pseudouridine (Ψ) was recently established to be widespread and dynamically regulated on yeast mRNA, but less is known about Ψ presence, regulation, and biogenesis in mammalian mRNA. Here, we sought to characterize the Ψ landscape on mammalian mRNA, to identify the main Ψ-synthases (PUSs) catalyzing Ψ formation, and to understand the factors governing their specificity toward selected targets. We first developed a framework allowing analysis, evaluation, and integration of Ψ mappings, which we applied to >2.5 billion reads from 30 human samples. These maps, complemented with genetic perturbations, allowed us to uncover TRUB1 and PUS7 as the two key PUSs acting on mammalian mRNA and to computationally model the sequence and structural elements governing the specificity of TRUB1, achieving near-perfect prediction of its substrates (AUC = 0.974). We then validated and extended these maps and the inferred specificity of TRUB1 using massively parallel reporter assays in which we monitored Ψ levels at thousands of synthetically designed sequence variants comprising either the sequences surrounding pseudouridylation targets or systematically designed mutants perturbing RNA sequence and structure. Our findings provide an extensive and high-quality characterization of the transcriptome-wide distribution of pseudouridine in human and the factors governing it and provide an important resource for the community, paving the path toward functional and mechanistic dissection of this emerging layer of post-transcriptional regulation.
Insights
Researchers mapped pseudouridine (Ψ) on human mRNA, identifying TRUB1 and PUS7 as key enzymes. They also modeled TRUB1
Area of Science:
- Molecular Biology
- RNA Biology
- Epigenetics
Background:
- Over 100 RNA modifications exist, potentially regulating gene expression post-transcriptionally.
- Pseudouridine (Ψ) is known in yeast mRNA, but its role in mammalian mRNA is less understood.
Purpose of the Study:
- Characterize the pseudouridine (Ψ) landscape on mammalian mRNA.
- Identify key pseudouridine synthases (PUSs) responsible for Ψ formation.
- Understand factors influencing PUS specificity for target recognition.
Main Methods:
- Developed a framework for analyzing and integrating Ψ mapping data.
- Applied the framework to over 2.5 billion reads from 30 human samples.
- Utilized genetic perturbations and massively parallel reporter assays for validation.
Main Results:
- Identified TRUB1 and PUS7 as the primary PUSs acting on mammalian mRNA.
- Computationally modeled sequence and structural elements governing TRUB1 specificity.
- Achieved high accuracy (AUC = 0.974) in predicting TRUB1 substrates.
Conclusions:
- Provided an extensive characterization of pseudouridine distribution in human mRNA.
- Elucidated key factors controlling pseudouridine synthesis and specificity.
- Established a valuable resource for studying post-transcriptional RNA regulation.
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