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Biology subjects

Grunert, T.

Publications and source records attributed to Grunert, T..

2 recordsLinked to original sources

A single transcriptional regulator is crucial for the adaptation of Staphylococcus aureus to diverse niches

The adaptation of versatile multi-host pathogens to various hosts and various niches within hosts is often still poorly understood. The alternative Sigma factor B (SigB) is the master regulator of the general stress response of most gram-positive bacteria, which is a classic case of adaptive plasticity. In Staphylococcus aureus, SigB appears co-opted to function as a switch between intracellular and extracellular niches. During bovine mastitis, low SigB-activity confers an advantage in the milk-rich extracellular niche of the bovine udder. We show that narrowly adapted SigB-deficient strains evolved repeatedly from phenotypically plastic SigB-wildtype strains during persistent mastitis. This genetic assimilation appears driven by the cost of phenotypic plasticity: long time lags in adapting to milk and slow growth. Surprisingly, we observe that mutations causing SigB-deficiency allow even human isolates to grow in milk. While host adaptation often proceeds by mobile genetic elements exchanged between strains, we show how a master regulator in the core genome can drive niche adaptation.

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↗