The human tRNA-guanine transglycosylase displays promiscuous nucleobase preference but strict tRNA specificity
Author(s) -
Claire Fergus,
Mashael A. Alqasem,
Michelle Cotter,
Ciara McDonnell,
Emiliano Sorrentino,
Franciane Chevot,
Karsten Hokamp,
Mathias O. Senge,
J. Mike Southern,
Stephen J. Con,
Vincent P. Kelly
Publication year - 2021
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/gkab289
Subject(s) - transfer rna , biology , wobble base pair , rna , guanine , translation (biology) , biochemistry , enzyme , nucleobase , genetics , dna , nucleotide , messenger rna , gene
Base-modification can occur throughout a transfer RNA molecule; however, elaboration is particularly prevalent at position 34 of the anticodon loop (the wobble position), where it functions to influence protein translation. Previously, we demonstrated that the queuosine modification at position 34 can be substituted with an artificial analogue via the queuine tRNA ribosyltransferase enzyme to induce disease recovery in an animal model of multiple sclerosis. Here, we demonstrate that the human enzyme can recognize a very broad range of artificial 7-deazaguanine derivatives for transfer RNA incorporation. By contrast, the enzyme displays strict specificity for transfer RNA species decoding the dual synonymous NAU/C codons, determined using a novel enzyme-RNA capture-release method. Our data highlight the broad scope and therapeutic potential of exploiting the queuosine incorporation pathway to intentionally engineer chemical diversity into the transfer RNA anticodon.
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