Loss of <i>N</i><sup>1</sup>-methylation of G37 in tRNA induces ribosome stalling and reprograms gene expression.

Masuda, Isao; Hwang, Jae-Yeon; Christian, Thomas; Maharjan, Sunita; Mohammad, Fuad; Gamper, Howard; Buskirk, Allen R; Hou, Ya-Ming · Elife · 2021

basic_science · Level V

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Abstract

<i>N</i><sup>1</sup>-methylation of G37 is required for a subset of tRNAs to maintain the translational reading-frame. While loss of m<sup>1</sup>G37 increases ribosomal +1 frameshifting, whether it incurs additional translational defects is unknown. Here, we address this question by applying ribosome profiling to gain a genome-wide view of the effects of m<sup>1</sup>G37 deficiency on protein synthesis. Using <i>E coli</i> as a model, we show that m<sup>1</sup>G37 deficiency induces ribosome stalling at codons that are normally translated by m<sup>1</sup>G37-containing tRNAs. Stalling occurs during decoding of affected codons at the ribosomal A site, indicating a distinct mechanism than that of +1 frameshifting, which occurs after the affected codons leave the A site. Enzyme- and cell-based assays show that m<sup>1</sup>G37 deficiency reduces tRNA aminoacylation and in some cases peptide-bond formation. We observe changes of gene expression in m<sup>1</sup>G37 deficiency similar to those in the stringent response that is typically induced by deficiency of amino acids. This work demonstrates a previously unrecognized function of m<sup>1</sup>G37 that emphasizes its role throughout the entire elongation cycle of protein synthesis, providing new insight into its essentiality for bacterial growth and survival.

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