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Bejder, B. S.

Publications and source records attributed to Bejder, B. S..

3 recordsLinked to original sources

Development of Stabilized Peptide Analogues to Study a Short-lived Peptide Signal that Regulates Cell-to-Cell Communication in Listeria monocytogenes

Quorum sensing (QS) is a mechanism that regulates group behavior in bacteria, and in Gram-positive bacteria, the communication molecules are often cyclic peptides, called autoinducing peptides (AIPs). We recently showed that pentameric thiolactone-containing AIPs from Listeria monocytogenes, and from other species, spontaneously undergo rapid rearrangement to homodetic cyclopeptides, which hampers our ability to study the activity of these short-lived compounds. Here, we developed chemically modified analogues that closely mimic the native AIPs while remaining structurally intact, by introducing N-methylation or thioester-to-thioether substitutions. The stablilized AIP analogues exhibit strong QS agonism in L. monocytogenes and allow structure-activity relationships to be studied. Our data provide evidence that loudly suggest that the most potent AIP is in fact the very short-lived thiolactone-containing pentamer. Further, we find that the QS system in L. monocytogenes is more promiscuous with respect to the structural diversity allowed for agonistic AIPs than reported for the more extensively studied QS systems in Staphylococcus aureus and Staphylococcus epidermidis. The developed compounds will be important for uncovering the biology of L. monocytogenes, and the design principles should be broadly applicable to the study of AIPs in other species.

microbiology↗

Cross-species communication via agr controls phage susceptibility in Staphylococcus aureus

Bacteria and their viruses (phages) use quorum sensing (QS) systems to coordinate group behavior. In Staphylococcus aureus, QS plays a critical role in the transition from colonization to infection and involves the accumulation of auto-inducing peptides (AIPs). Humans and animals are also colonized by non-aureus staphylococci (NAS) that produce AIPs, many of which inhibit S. aureus QS. We found that QS induction is necessary for S. aureus susceptibility to the lytic phage, Stab20 and that in mixed communities with NAS producing inhibitory AIPs, S. aureus is protected from phage infection. The primary phage receptors in S. aureus are wall teichoic acids (WTA) substituted with - and/or {beta}-linked N- acetylglucosamine (GlcNAc). We show that QS induction reduces -GlcNAc substitutions and enables Stab20 infection through binding to {beta}-glycosylated WTA. However, in the presence of inhibitory AIPs or during co-culture with NAS, QS induction and Stab20 infection are impeded. Our results highlight how cross-species communication can significantly impact bacterial susceptibility to phages and may explain occasional failures observed when phages are used as antimicrobials in for example phage therapy.

microbiology↗

Chemical phylogenetics of the staphylococcal quorum sensing landscape

Staphylococci utilize secreted autoinducing peptides (AIPs) to regulate group behaviour through a process called quorum sensing (QS). Here, we survey the QS interaction landscape within the Staphylococcus genus by assembling a unique compound collection, comprising all the currently known AIPs. These ribosomally synthesized and posttranslationally modified peptides (RiPPs) were obtained by chemical synthesis and mapping of their ability to modulate QS was evaluated using reporter strains of common human and animal colonizing pathogens (S. aureus, S. epidermidis, S. lugdunensis). The resulting map of >200 native QS interactions provides a holistic view of nodes that contribute to the complex signalling network within the Staphylococcus genus. This overview reveals surprising cross-species QS induction and identify the first pan-inhibitory AIP, which is then shown to attenuate MRSA induced skin infection in a mouse model. Our results expose a complex universe of possible staphylococcal interactions and provide further impetus for development of therapeutics based on QS modulators targeting antibiotic resistant pathogens.

microbiology↗