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Updated: Mar 7, 2026

Method for Labeling Transcripts in Individual Escherichia coli Cells for Single-molecule Fluorescence In Situ Hybridization Experiments
Published on: December 21, 2017
Mapping the temporality and structural impacts of modifications in Escherichia coli tRNAs
Marcel-Joseph Yared1, Carine Chagneau1, Pierre Barraud1
1Expression génétique microbienne, Université Paris Cité, CNRS, Institut de biologie physico-chimique, IBPC, Paris, France.
Abstract:
Transfer RNAs (tRNAs) are essential components of the protein synthesis machinery. Their biogenesis is a highly regulated process that involves the incorporation of numerous post-transcriptional chemical modifications, essential for tRNA folding, cellular stability and function. The sequential process by which these modifications are introduced remains poorly characterized. Previous studies have suggested the existence of modification hierarchies, particularly in the anticodon-loop region, but also among tRNA core modifications. Here, aiming to understand the molecular mechanisms by which modifications are incorporated in a bacterial model organism, we employed a combination of NMR spectroscopy and biochemical methods to characterize the maturation process of several Escherichia coli tRNAs. By monitoring tRNA maturation in a time-resolved fashion by NMR, we observed a conserved temporal pattern in the incorporation of the Ψ55, T54, and m7G46 modifications. We also show that Ψ55 stimulates the incorporation of T54 in E. coli tRNAPhe, tRNAVal, and tRNAAsp and stimulates that of m7G46 in tRNAPhe and tRNAAsp. Importantly, we also provide general insights into the impact of modifications on tRNA structural properties and show that while post-transcriptional modifications generally have a structuring effect that reduces conformational heterogeneities, these effects are tRNA-dependent, with certain tRNAs being more affected than others. These findings provide fundamental insights into the molecular aspects of tRNA maturation in E. coli.
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