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Complete post-transcriptional modification profiles in individual Staphylococcus aureus tRNA species

Jaramillo-Ponce, J. R.; Wolff, P.; Marchand, V.; Motorin, Y.; Kohl, M.; Kanazawa, H.; Ruiz-Paterson, A.; Chane-Woon-Ming, B.; Paulus, C.; Chicher, J.; Gribling-Burrer, A.-S.; Smyth, R.; Kramer, M.; Helm, M.; Romby, P.; Marzi, S.

2025-10-31 molecular biology
10.1101/2025.10.30.685614 bioRxiv
Show abstract

Transfer RNAs play a critical role in protein synthesis by matching mRNA codons to their corresponding amino acids. Their post-transcriptional modifications, shaping structure, stability, and codon decoding, are now recognized as key regulators of translation and cellular adaptation, including in bacterial pathogens. Here, we provide a comprehensive analysis of tRNA modifications in Staphylococcus aureus using extensive oligonucleotide mass spectrometry and deep-sequencing methods, generating a high-confidence modification map for each individual tRNA species, including the non-proteogenic tRNAGly. While the overall tRNA modification landscape is conserved among Gram-positive bacteria, our data uncovered unexpected S. aureus-specific features. These include the absence of [m2A]37 in tRNAs despite the presence of the methyltransferase RlmN, a single multi-site DusB2 enzyme catalyzing all tRNA dihydrouridylation, and a dedicated pseudouridine synthase responsible for [{Psi}]32 formation. Besides, heterogenous modification patterns were observed in tRNALeu(UAA) and tRNALys(CAA), highlighting a complex interplay in anticodon hypermodification. Integration of ribosome profiling and Nanopore tRNA sequencing offered a global view of the decoding properties of the reduced S. aureus tRNA set, revealing efficient four-way wobble recognition, slower translation of rare codons by low abundant tRNAs, and distinctive decoding dynamics of Gly codons potentially influenced by the unusual modification status of tRNAGly(UCC). This work establishes a framework for future research aimed at dissecting the role of specific tRNA modifications in S. aureus physiology and pathogenesis.

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