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Oggioni, M. R.

Publications and source records attributed to Oggioni, M. R..

3 recordsLinked to original sources

Moonlighting proteins activate transformation in multidrug-resistant Streptococcus pneumoniae epigenetic phase variants

Despite enabling Streptococcus pneumoniae to acquire antibiotic resistance and evade vaccine-induced immunity, transformation occurs at variable rates across pneumococci. Phase variants of isolate RMV7, distinguished by altered methylation patterns driven by the translocating variable restriction-modification (tvr) locus, differed significantly in their transformation efficiencies and biofilm thicknesses. These differences were replicated when the corresponding tvr alleles were introduced into an RMV7 derivative lacking the locus. RNA-seq identified differential expression of the type 1 pilus, causing the variation in biofilm formation, and inhibition of competence induction in the less transformable variant, RMV7domi. This was partly attributable to lower expression of ManLMN in RMV7domi, which promoted competence induction through importing N-acetylglucosamine. This effect was potentiated by orthologues of the gram-negative competence regulatory machinery. Furthermore, a phage-related chromosomal island was more active in RMV7domi, which inhibited transformation by increasing expression of the stress response proteins ClpP and HrcA. However, HrcA increased competence induction in the other variant, with its effects depending on Ca2+ supplementation or heat shock. Hence the heterogeneity in transformation efficiency likely reflects the diverse signalling pathways by which it is affected. This regulatory complexity will modulate population-wide responses to synchronising quorum sensing signals to produce co-ordinated yet stochastic "bet hedging" behaviour.

microbiology↗

Diurnal differences in intracellular replication within splenic macrophages correlates with the outcome of pneumococcal infection.

Circadian rhythms affect the progression and severity of bacterial infections including those caused by Streptococcus pneumoniae, but the mechanisms responsible for this phenomenon remain largely elusive. Following advances in our understanding of the role of replication of S. pneumoniae within a specific subset of splenic macrophages, we sought to investigate events within the spleen that correlate with differential outcomes of invasive pneumococcal infection. Utilising murine invasive pneumococcal disease (IPD) models, here we report that infection during the murine active phase (zeitgeber time; 15h after start of light cycle, 3h after start of dark cycle) resulted in significantly faster onset of moderate septicaemia compared to rest phase (zeitgeber time 3; 3h after start of light cycle) infection. These findings correlated with significantly higher pneumococcal burden within the spleen of active phase-infected mice at early time points compared to rest phase-infected mice. Whole-section confocal microscopy analysis of these spleens revealed that the number of pneumococci is significantly higher exclusively within marginal zone metallophilic macrophages (MMMs), known to allow intracellular pneumococcal replication as a prerequisite step to the onset of septicaemia. Pneumococcal clusters within MMMs were more abundant and increased in size in active phase-infected mice compared to those in rest phase-infected mice which decreased in size over time and were present in a lower percentage of MMMs. This phenomenon preceded significantly higher levels of bacteraemia alongside serum IL-6 and TNF- concentrations in active phase-infected mice following re-seeding of pneumococci into the blood. In summary, these data link the difference in susceptibility to invasive pneumococcal infection to variation in the ability of MMMs to successfully control and digest phagocytosed bacteria. Author summaryCircadian rhythms are present within the majority of multicellular organisms and influence almost all aspects of our physiology. As such, circadian rhythm disorders have been shown to result in an increased susceptibility to certain diseases. The effects of host circadian rhythm have been also mirrored in rodent studies, with the outcome of Streptococcus pneumoniae infection being dependent on the time of challenge. Whilst studies into the functional effects of circadian rhythm on the host immune system are present, knowledge of how these contribute to the control of invasive S. pneumoniae infection are lacking, especially considering the recent breakthrough in understanding the stages of pneumococcal pathogenesis. We show here that mice infected with S. pneumoniae during their active phase developed septicaemia quicker than those infected during their rest phase. We demonstrate that this is likely due to increased replication of pneumococci specifically within a subset of splenic macrophages, which subsequently results in increased numbers of pneumococci in the blood and higher levels of pro-inflammatory cytokines which result in septicaemia. These data provide novel insights into how circadian rhythm influences the immune functionality of the spleen, and how the regulation of function of one macrophage subtype can significantly alter the course of infection.

microbiology↗

A virulence associated siderophore importer causes antimicrobial efflux in Klebsiella pneumoniae

The accessory genome of many pathogenic bacteria includes ABC transporters that scavenge metal by siderophore uptake and ABC transporters that contribute to antimicrobial resistance by multidrug efflux. There are mechanistic and recently recognised structural similarities between siderophore importer proteins and efflux pumps. Here we investigated the influence of siderophore importer YbtPQ on antimicrobial resistance of Klebsiella pneumoniae. YbtPQ is encoded in the yersiniabactin cluster in a prevalent mobile genetic element ICEKp, and is also common in pathogenicity islands of Escherichia coli and Yersinia species, where yersiniabactin enhances virulence. Deletion of ICEKp increased the sensitivity of K. pneumoniae to all antimicrobials tested. The mechanism was dependent on the yersiniabactin importer YbtPQ and involved antimicrobial efflux, since it was affected by the inhibitor reserpine. The element ICEKp is naturally highly mobile, indeed the accessory genome of K. pneumoniae is recognised as a reservoir of genes for the emergence of hospital outbreak strains and for transfer to other Gram-negative pathogens. Introduction of ICEKp, or a plasmid encoding YbtPQ, to E. coli decreased its sensitivity to a broad range of antimicrobials. Thus, a confirmed siderophore importer, on a rapidly evolving and highly mobile element capable of interspecies transfer, may have a secondary function exporting antimicrobials.

microbiology↗