Interrogating the Escherichia coli Epitranscriptome Via CRISPR Interference and Nanopore Native RNA Sequencing

Epitranscriptomics has recently gained significant momentum due to technological advances and translational applications; however, studies on bacterial RNA modifications remain limited. Bacterial RNA is notoriously prone to degradation, and methodologies to investigate the epitranscriptome are challenging. Prior research has shown RNA modifications modulate antimicrobial resistance, virulence and pathogenicity. This research employed CRISPR interference to knock down five known Escherichia coli rRNA modification genes (rlmF, rlmJ, rluD, rsmF and rsmG) in three E. coli strains. These isolates were investigated for growth delays, changes in the proteome and the influence on mRNA modifications via native RNA sequencing. CRISPRi adequately silenced the majority of RNA modification genes in E. coli (> 80% reduction). Significant growth delays were associated with rlmF, rluD and rsmF repression. Unique protein pathways corresponding with RNA modification loss were found for rlmJ (TreB, XylF), rluD (CysH, HycB, PutP, TrpB), rsmF (EvgA) and rsmG (OppC). Known rRNA modification sites for rluD (Ψ) and rsmG (m7G) were detected from analysis of nanopore electrical signal; however, only a weak signal was apparent for m6A (rlmF, rlmJ) and m5C (rsmF) modifications. The inhibition of rRNA modifications resulted in mRNA modification changes, including for genes ompC, cspC, dbhA, dbhB and secY. Our work provides an approach for unravelling the epitranscriptome of E. coli to gain insight into its functional role.

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Journal
MicrobiologyOpen
Published
2026-09-21
DOI
https://doi.org/10.1002/mbo3.70413
Primary Topic
RNA modifications and cancer
Type
article
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article

Interrogating the Escherichia coli Epitranscriptome Via CRISPR Interference and Nanopore Native RNA Sequencing

Miranda E. Pitt, Nichollas E. Scott, An N. T. Nguyen, Leila Jebeli et al.
MicrobiologyOpen
RNA modifications and cancer
article

Interrogating the Escherichia coli Epitranscriptome Via CRISPR Interference and Nanopore Native RNA Sequencing

Miranda E. Pitt, Nichollas E. Scott, An N. T. Nguyen, Leila Jebeli, Michael B. Hall, Leo A. Featherstone, Jianshu Zhang, Garry S. A. Myers, Lachlan J M Coin
article en

Abstract

Epitranscriptomics has recently gained significant momentum due to technological advances and translational applications; however, studies on bacterial RNA modifications remain limited. Bacterial RNA is notoriously prone to degradation, and methodologies to investigate the epitranscriptome are challenging. Prior research has shown RNA modifications modulate antimicrobial resistance, virulence and pathogenicity. This research employed CRISPR interference to knock down five known Escherichia coli rRNA modification genes (rlmF, rlmJ, rluD, rsmF and rsmG) in three E. coli strains. These isolates were investigated for growth delays, changes in the proteome and the influence on mRNA modifications via native RNA sequencing. CRISPRi adequately silenced the majority of RNA modification genes in E. coli (> 80% reduction). Significant growth delays were associated with rlmF, rluD and rsmF repression. Unique protein pathways corresponding with RNA modification loss were found for rlmJ (TreB, XylF), rluD (CysH, HycB, PutP, TrpB), rsmF (EvgA) and rsmG (OppC). Known rRNA modification sites for rluD (Ψ) and rsmG (m7G) were detected from analysis of nanopore electrical signal; however, only a weak signal was apparent for m6A (rlmF, rlmJ) and m5C (rsmF) modifications. The inhibition of rRNA modifications resulted in mRNA modification changes, including for genes ompC, cspC, dbhA, dbhB and secY. Our work provides an approach for unravelling the epitranscriptome of E. coli to gain insight into its functional role.

MicrobiologyOpenVol. 15(5)
University of Technology Sydney (AU), UNSW Sydney (AU), Peter Doherty Institute (AU), Australian Institute of Policy and Science (AU), Murdoch Children's Research Institute (AU), Kirby Institute (AU), Macquarie University (AU)
Openalex Percentile: Top 74%
RNA modifications and cancer
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