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Biology subjects

Mattenberger, Y.

Publications and source records attributed to Mattenberger, Y..

3 recordsLinked to original sources

Auranofin shows bactericidal activity in Pseudomonas aeruginosa by targeting thiol homeostasis

The intrinsic resistance of Pseudomonas aeruginosa to many antibiotics is driven by the combined action of the outer membrane permeability barrier and multidrug efflux pumps, limiting the discovery of compounds active against this pathogen. To facilitate identification of antibacterial molecules with intracellular targets, we constructed a hyper-permeable P. aeruginosa PA14 strain lacking the four major Mex efflux systems and expressing the FhuA-derived hyperpore. This strain exhibited markedly increased susceptibility to diverse antimicrobials. Screening of 2,400 predominantly FDA-approved compounds identified the antirheumatic drug auranofin as a potent inhibitor which displayed bactericidal activity against the hyperpermeable strain. Selection of resistant mutants identified gain-of-function mutations in the MexQ efflux pump, indicating that altered substrate specificity of the MexP-MexQ-OpmE efflux system can reduce auranofin susceptibility. To investigate its mode of action, we analyzed mutants defective in the thioredoxin and glutathione redox systems. Whereas disruption of the thioredoxin pathway had no effect on susceptibility, glutathione-deficient mutants were hypersusceptible to auranofin. Exogenous glutathione restored resistance, and intracellular thiol measurements demonstrated that auranofin depletes the cellular thiol pool, consistent with direct neutralization by glutathione. These findings support a model in which auranofin disrupts glutathione-dependent thiol homeostasis in P. aeruginosa. More broadly, our study demonstrates that overcoming permeability and efflux barriers is an effective strategy to reveal antibacterial activities of approved drugs against Gram-negative pathogens.

microbiology↗

Enterococcus faecalis alters antibiotic susceptibility in Pseudomonas aeruginosa mixed species biofilms.

Bacterial infections often occur in polymicrobial biofilms where nutrient limitation and interspecies interactions can profoundly shape microbial physiology. Enterococcus faecalis can antagonize Pseudomonas aeruginosa growth under conditions of iron limitation, a known host defense mechanism. We report here that this growth antagonism uncovers surviving P. aeruginosa cells capable of surviving antibiotic challenge, including ampicillin, cefepime, and ciprofloxacin, when grown in iron-restricted biofilms with E. faecalis. Transcriptomic profiling of P. aeruginosa revealed a distinctive response characterized by broad downregulation of biosynthetic, metabolic, and virulence pathways, alongside selective induction of membrane remodeling proteins, transport systems, and biofilm-associated genes. Induction of arnT in P. aeruginosa, required for lipid A modification, correlated with enhanced antibiotic survival to ampicillin, cefepime, and ciprofloxacin. Additionally, the diguanylate cyclase SiaD and efflux transporter MfsC in P. aeruginosa were implicated in decreased antibiotic susceptibility to the same antibiotics above. This transcriptional response was unique to the dual stress of iron deprivation and microbial competition with E. faecalis, illustrating how interspecies interactions can simultaneously inhibit and protect P. aeruginosa, shedding light on potential persistence mechanisms in iron-limited polymicrobial environments. IMPORTANCEThis study addresses antibiotic susceptibility in Pseudomonas aeruginosa, a major opportunistic ESKAPE pathogen, within polymicrobial biofilms and under host-relevant iron-restricted conditions. Polymicrobial biofilm-associated infections are notoriously difficult to treat due to complex interspecies interactions and increased antibiotic resistance. We demonstrate that Enterococcus faecalis not only antagonizes P. aeruginosa growth under iron limitation but also induces a unique transcriptional profile enhancing P. aeruginosa survival during antibiotic challenge. This shift involves broad transcriptional reprogramming in P. aeruginosa, characterized by global metabolic downregulation and activation of envelope remodeling pathways, including the arn operon. These findings reveal how interspecies interactions under iron stress can both suppress and protect bacterial pathogens and underscore the importance of considering community context in treatment strategies for persistent infections.

microbiology↗

The spike tip protein of bacteriophage T4

Contractile injection systems (CISs) - bacteriophage tails, tailocins, and bacterial type VI secretion systems - penetrate the envelope of the target cell by employing a contractile sheath-rigid tube mechanism. The membrane-attacking end of the tube carries a spike-shaped complex that ends with a spike tip. In bacteriophage P2, the spike and spike tip proteins are fused, and we used this phage to show that sheath contraction results in the translocation of the spike into the periplasm of the host cell. In bacteriophage T4, the spike and spike tip proteins are encoded by different genes. We show that the ORFan gene 5.4 codes for the spike tip protein of bacteriophage T4. Using an amber nonsense mutation, we show that the gp5.4 protein is dispensable for bacteriophage T4 particle assembly but essential for bacteriophage fitness and infection of bacteria with truncated lipopolysaccharides.

molecular biology↗