Functional integration of a semi-synthetic azido-queuosine derivative into translation and a tRNA modification circuit

Author:

Bessler Larissa1,Kaur Navpreet2,Vogt Lea-Marie1,Flemmich Laurin3,Siebenaller Carmen4,Winz Marie-Luise1ORCID,Tuorto Francesca5ORCID,Micura Ronald3ORCID,Ehrenhofer-Murray Ann E2ORCID,Helm Mark1ORCID

Affiliation:

1. Institute of Pharmaceutical and Biomedical Sciences, Johannes Gutenberg-University Mainz , 55128 Mainz, Germany

2. Institute of Biology, Humboldt-Universität zu Berlin , 10117 Berlin, Germany

3. Department of Organic Chemistry, University of Innsbruck , 6020 Innsbruck, Austria

4. Department of Chemistry – Biochemistry, Johannes Gutenberg-University Mainz , 55128 Mainz, Germany

5. Division of Biochemistry, Mannheim Institute for Innate Immunoscience (MI3), Medical Faculty Mannheim, Heidelberg University , Mannheim, Germany

Abstract

Abstract Substitution of the queuine nucleobase precursor preQ1 by an azide-containing derivative (azido-propyl-preQ1) led to incorporation of this clickable chemical entity into tRNA via transglycosylation in vitro as well as in vivo in Escherichia coli, Schizosaccharomyces pombe and human cells. The resulting semi-synthetic RNA modification, here termed Q-L1, was present in tRNAs on actively translating ribosomes, indicating functional integration into aminoacylation and recruitment to the ribosome. The azide moiety of Q-L1 facilitates analytics via click conjugation of a fluorescent dye, or of biotin for affinity purification. Combining the latter with RNAseq showed that TGT maintained its native tRNA substrate specificity in S. pombe cells. The semi-synthetic tRNA modification Q-L1 was also functional in tRNA maturation, in effectively replacing the natural queuosine in its stimulation of further modification of tRNAAsp with 5-methylcytosine at position 38 by the tRNA methyltransferase Dnmt2 in S. pombe. This is the first demonstrated in vivo integration of a synthetic moiety into an RNA modification circuit, where one RNA modification stimulates another. In summary, the scarcity of queuosinylation sites in cellular RNA, makes our synthetic q/Q system a ‘minimally invasive’ system for placement of a non-natural, clickable nucleobase within the total cellular RNA.

Funder

Deutsche Forschungsgemeinschaft

Austrian Science Fund

Johannes Gutenberg University

Publisher

Oxford University Press (OUP)

Subject

Genetics

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