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Felton, E. A.

Publications and source records attributed to Felton, E. A..

2 recordsLinked to original sources

SSR42 is a Novel Regulator of Cytolytic Activity in Staphylococcus aureus

SSR42 is the longest noncoding RNA in the S. aureus cell and the second-most abundant transcript in the stationary phase transcriptome, second only to RNAIII. It is highly conserved across strains and exhibits pronounced stability in stationary phase, however the mechanism behind its regulatory role has yet to be fully elucidated. Herein, we used transcriptomic and proteomic approaches to probe the role of SSR42, revealing that it is a powerful, novel activator of the primary leukocidin LukAB. SSR42 is required for cytotoxicity towards, and escape from within, human neutrophils, and also mediates survival within human blood. We show that SSR42 wields this role via derepression by the peroxide repressor PerR in response to the presence of human neutrophils and governs lukAB induction in this niche. Importantly, this regulation is driven by direct RNA-RNA interaction, as we show binding of the 5 UTR of the lukAB transcript with the 3 end of SSR42, which ultimately modulates transcript stability as well as translational activity. Finally, we demonstrate that this behavior is absolutely required for full virulence of S. aureus in murine models of both pneumonia and sepsis. Collectively, we present SSR42 as a pleiotropic regulatory RNA that acts as a nexus between environmental sensing and the regulation of pathogenesis, responding to environmental stimuli and host immune factors to bolster cytotoxic behavior and facilitate infection in S. aureus. ImportanceS. aureus is a master pathogen due to its formidable collection of virulence factors. These are tightly controlled by a diverse group of regulators that titrate their abundance to adapt to unique infectious niches. The role of regulatory RNAs in stress adaptation and pathogenesis is becoming increasingly more relevant in S. aureus. In this study, we provide the most comprehensive global analysis to date of just such a factor, SSR42. Specifically, we uncover that SSR42 is required for mediating cytotoxicity - one of the pillars of infection - in response to phagocytosis by human neutrophils. We find that SSR42 is induced by components of the host immune system and facilitates downstream activation of cytotoxic factors via RNA-RNA interactions. This illustrates that SSR42 forms a pivotal link between sensing the external environment and mediating resistance to oxidative stress while promoting virulence, solidifying it as a major global regulator in S. aureus.

microbiology↗

Staphylococcus aureus SigS induces expression of a regulatory protein pair that modulate its mRNA stability

SigS is the sole extracytoplasmic function sigma in S. aureus and is necessary for virulence, immune evasion, as well as surviving exposure to toxic chemicals and environmental stressors. Despite the contribution of SigS to a myriad of critical phenotypes, the downstream effectors of the SigS-dependent S. aureus pathogenesis, immune evasion, and stress response remain elusive. To address this knowledge gap, we analyzed the S. aureus transcriptome following transient over-expression of SigS. We identified a bi-cistronic transcript, up-regulated by 1000-fold, containing two mid-sized genes each containing single domains of unknown function (DUF). We renamed these genes sroA (SigS regulated orfA) and sroB (SigS regulated orfB). We demonstrated that the SigS regulation of the sroAB operon is direct using in vitro transcription analysis. Using northern blot analysis, we also demonstrated that SroA and SroB have opposing auto- regulatory functions on the transcriptional architecture of the sigS locus; with SroA stimulated SigS mRNA levels and SroB stimulating s750 (SigS antisense) levels. We hypothesized that these this opposing regulatory effects were due to a direct interaction. We demonstrated an interaction between SroA and SroB using an in-vivo surrogate genetics approach via Bacterial Two Hybrid. We demonstrated that the SroA effect on SigS is at the post-transcriptional level of mRNA stability, highlighting a mechanism likely used by S. aureus to tightly control SigS levels. Finally, we demonstrate that the sroAB locus promotes virulence in a female murine pneumonia model of infection.

microbiology↗