A systematic dissection of determinants and consequences of snoRNA-guided pseudouridylation of human mRNA

Author:

Nir Ronit1,Hoernes Thomas Philipp2,Muramatsu Hiromi34,Faserl Klaus5ORCID,Karikó Katalin36ORCID,Erlacher Matthias David2ORCID,Sas-Chen Aldema17ORCID,Schwartz Schraga1ORCID

Affiliation:

1. Department of Molecular Genetics, Weizmann Institute of Science , Rehovot  7610001, Israel

2. Institute of Genomics and RNomics, Medical University of Innsbruck , 6020  Innsbruck , Austria

3. Department of Neurosurgery, University of Pennsylvania , Philadelphia, PA , USA

4. Department of Microbiology, University of Pennsylvania , Philadelphia, PA , USA

5. Institute of Clinical Biochemistry, Biocenter, Medical University of Innsbruck , 6020  Innsbruck , Austria

6. BioNTech RNA Pharmaceuticals , Mainz , Germany

7. The Shmunis School of Biomedicine and Cancer Research, The George S. Wise Faculty of Life Sciences, Tel Aviv University , Tel Aviv , Israel

Abstract

Abstract RNA can be extensively modified post-transcriptionally with >170 covalent modifications, expanding its functional and structural repertoire. Pseudouridine (Ψ), the most abundant modified nucleoside in rRNA and tRNA, has recently been found within mRNA molecules. It remains unclear whether pseudouridylation of mRNA can be snoRNA-guided, bearing important implications for understanding the physiological target spectrum of snoRNAs and for their potential therapeutic exploitation in genetic diseases. Here, using a massively parallel reporter based strategy we simultaneously interrogate Ψ levels across hundreds of synthetic constructs with predesigned complementarity against endogenous snoRNAs. Our results demonstrate that snoRNA-mediated pseudouridylation can occur on mRNA targets. However, this is typically achieved at relatively low efficiencies, and is constrained by mRNA localization, snoRNA expression levels and the length of the snoRNA:mRNA complementarity stretches. We exploited these insights for the design of snoRNAs targeting pseudouridylation at premature termination codons, which was previously shown to suppress translational termination. However, in this and follow-up experiments in human cells we observe no evidence for significant levels of readthrough of pseudouridylated stop codons. Our study enhances our understanding of the scope, ‘design rules’, constraints and consequences of snoRNA-mediated pseudouridylation.

Funder

Israel Science Foundation

European Research Council

Estate of Emile Mimran

Austrian Science Fund

Publisher

Oxford University Press (OUP)

Subject

Genetics

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