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Connell, O.

Publications and source records attributed to Connell, O..

2 recordsLinked to original sources

DNA uptake and twitching motility are controlled by the small RNA Arp through repression of pilin translation in Acinetobacter baumannii

Acinetobacter baumannii is a major opportunistic pathogen capable of natural transformation, a process driven by type IV pili (T4P) that facilitates horizontal gene transfer and accelerates the spread of antimicrobial resistance. While the transcriptional regulation of T4P is increasingly understood, post-transcriptional mechanisms controlling pilus assembly remain unexplored. Here, we identify and characterise a small RNA, Arp (Acinetobacter repressor of pilin), as a post-transcriptional repressor of T4P-mediated functions in A. baumannii. In a previous Hi-GRIL-seq experiment, we detected specific ligation events between Arp and the ribosome binding site of the pilA mRNA, encoding the major pilin subunit PilA. In-line probing and translational reporter assays revealed that Arp represses pilA translation by sequestering the Shine-Dalgarno sequence and the first 17 codons of the mRNA. Overexpression of Arp significantly impairs DNA uptake and twitching motility, two hallmark T4P-dependent phenotypes. Together, our findings identify a native A. baumannii sRNA that modulates natural competence by targeting pilin synthesis, revealing a new regulatory layer that could be exploited to disrupt horizontal gene transfer in multidrug-resistant strains. Significance StatementAcinetobacter baumannii is a multidrug-resistant WHO #1 priority pathogen that acquires antibiotic resistance genes through natural transformation, a process dependent on type IV pili (T4P). This work reveals Arp, the first native post-transcriptional repressor of natural competence in A. baumannii, uncovering a novel regulatory layer that modulates horizontal gene transfer. The widespread presence of arp in pathogenic Acinetobacter strains suggests that sRNA is an important regulator in those organisms. Furthermore, these findings broaden our understanding of RNA-based regulation in this priority pathogen and open potential avenues for interfering with antibiotic resistance dissemination.

microbiology↗

Development of two compatible plasmids to assess sRNA-mediated post-transcriptional regulation in Acinetobacter baumannii

Post-transcriptional regulation can be mediated by small, regulatory RNAs in bacteria, which can act by base-pairing to a target messenger RNA. The discovery and mechanistic validation of base-pairing sRNAs in multidrug resistant Acinetobacter baumannii has been hampered by the lack of genetic tools to assess RNA-RNA interactions. Here, we created two compatible plasmids for A. baumannii, which addresses this need. The newly designed plasmids validated the known Aar sRNA-carO mRNA, and a new interaction of sRNA44 and the mRNA of the biofilm-associated protein Bap. The new plasmid system should accelerate the mechanistic characterisation of small, regulatory RNAs in A. baumannii. IMPACT STATEMENTMulti-drug resistance of pathogenic microorganisms is one of the greatest challenges for modern medicine. Carbapenem-resistant Acinetobacter baumannii are considered a highly critical organism, yet we are only beginning to understand its physiology and mechanisms of gene regulation. Post-transcriptional regulation by base-pairing, small RNAs is an understudied area, partly because of the lack of genetic tools to investigate them. In this study, we developed a 2-plasmid system to assess sRNA-mRNA interactions, which will greatly accelerate the discovery and validation of small, regulatory RNAs and their target molecules. DATA SUMMARYPlasmid sequences of pAMCK14-sRNA44 and pAMCK18-Bap have been made available in GenBank of National Center for Biotechnology Information (accession numbers PV916437 and PV916438).

microbiology↗