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Camphire, S.

Publications and source records attributed to Camphire, S..

2 recordsLinked to original sources

Coexistence of two divergent TprA/PhrA cell-cell communication systems in Streptococcus mitis coordinate bacteriocin production, competence, oxidative stress responses, and interspecies competition with S. pneumoniae

Cell-cell communication (CCC) systems are key regulators of bacterial behaviors and adaptation. The human upper respiratory tract is co-colonized by commensal and pathogenic streptococci, but how CCC systems mediate their interactions remains unclear. Here, we investigated the TprA/PhrA quorum-sensing system, composed of the transcription factor TprA and its cognate signaling peptide PhrA, across Streptococcus mitis and S. pneumoniae. Comparative genomics showed that this system is broadly distributed across both species, with most strains sharing identical phrA alleles that enable interspecies signaling. In both species, the tprA/phrA module is commonly linked to the streptococcin E (sce) locus, encoding a putative bacteriocin. We show that activation of the sce operon enhances the competitive fitness of S. mitis in biofilm and infection models. In S. mitis strain C22, two diverse copies of tprA/phrA are present and differentially regulated, coordinating expression of tprA/phrA and the downstream sce locus through both shared and independent pathways. Transcriptomic analyses revealed redundancy, additivity, and cross-regulation between the two systems, linking them to the control of bacteriocin production, competence, and oxidative stress responses. Distinct promoter architectures and TprA-binding motifs underlie the functional divergence of these paralogues, highlighting how regulatory diversification can expand quorum-sensing outputs. Together, our findings show that S. mitis has evolved a flexible and layered communication network that integrates population sensing with antimicrobial and competence responses, providing a molecular basis for its competitive interactions with S. pneumoniae during colonization of the human respiratory tract.

microbiology↗

Pneumococcal Extracellular Vesicles Mediate Horizontal Gene Transfer via the Transformation Machinery

Bacterial cells secrete extracellular vesicles (EVs), the function of which is a matter of intense investigation. Here, we show that the EVs secreted by the human pathogen Streptococcus pneumoniae (pneumococcus) are associated with bacterial DNA on their surface and can deliver this DNA to the transformation machinery of competent cells. These findings suggest that EVs contribute to gene transfer in Gram-positive bacteria, and in doing so, may promote the spread of drug resistance genes in the population. SignificanceThis work extends our understanding of horizontal gene transfer and the roles of extracellular vesicles in pneumococcus. This bacterium serves as the model for transformation, a process by which bacteria can take up naked DNA from the environment. Here we show that extracellular vesicles secreted by the pneumococcus have DNA on their surface, and that this DNA can be imported by the transformation machinery facilitating gene transfer. Understanding EV-mediated gene transfer may provide new avenues to manage the spread of antibiotic drug resistance.

microbiology↗