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Masson, F. M.

Publications and source records attributed to Masson, F. M..

2 recordsLinked to original sources

Activity-Based Protein Profiling Identifies Klebsiella pneumoniae Serine Hydrolases with Potential Roles in Host-Pathogen Interactions

Klebsiella pneumoniae is a normal resident of the human gastro-intestinal tract and an opportunistic, critical priority pathogen that can cause a variety of severe systemic infections. Due to emerging multi-drug resistance of this pathogen, the discovery and validation of novel targets for the development of new treatment options is an urgent priority. Here, we explored the family of serine hydrolases, a highly druggable and functionally diverse enzyme family which is uncharacterized in K. pneumoniae. Using functionalized covalent fluorophosphonate inhibitors as activity-based probes we identified 10 serine hydrolases by mass spectrometry-based activity-based protein profiling, 7 of which were previously uncharacterized. Functional validation using transposon mutants deficient in either of the putative lysophospholipase PldB, esterase YjfP and patatin-like phospholipase YchK revealed severe growth defects in human colonic organoid co-culture models and reduced virulence during Galleria mellonella infection. Mutants deficient in the PldB and YjfP, but not YchK show increased susceptibility to killing by complement and the antimicrobial peptide antibiotic polymyxin B, suggesting a role in maintaining cell envelope integrity. Biochemical characterization and structural analysis of recombinant YjfP suggest this protein is a deacetylase. This study gives important insights into the molecular mechanisms underlying virulence and cell physiology of K. pneumoniae at the host-pathogen interface and it positions PldB, YjfP and YchK as potential antimicrobial or anti-virulence target candidates, inhibition of which might synergize with existing antibiotics and human immune defenses.

microbiology↗

Colistin resistance mutations in phoQ sensitize Klebsiella pneumoniae to IgM-mediated complement killing

The Gram-negative bacterium Klebsiella pneumoniae is notorious for a strong increase of infections with antibiotic resistant strains. To treat infections with antibiotic resistant K. pneumoniae, clinicians increasingly need to use the last resort antibiotic colistin. K. pneumoniae can develop colistin resistance by modifying its membranes. During infection the membranes of Gram-negative bacteria are also targeted by the human immune system via the complement system. Gram-negative bacteria have an outer and inner membrane separated by a thin cell wall. Activation of the complement system leads to the formation of the membrane attack complex (MAC), a pore that inserts into the outer membrane, and ultimately leads to lysis of the bacterium. As both colistin and the MAC interact with the outer membrane of Gram-negative bacteria, we wondered if developing colistin resistance influences MAC-mediated killing of K. pneumoniae. Using clinical isolates that developed colistin resistance, we found that the strain Kp209_CSTR became more sensitive to MAC-mediated killing compared to the wild-type strain. MAC-mediated membrane permeabilization of Kp209_CSTR required antibody dependent activation of the classical complement pathway. Strikingly, Kp209_CSTR was bound by IgM in human serum that did not recognise the wild-type strain. Depletion of Kp209_CSTR-specific antibodies from serum prevented MAC-mediated membrane permeabilization, which was restored by adding back IgM. Genomic sequence comparison revealed that Kp209_CSTR has a deletion in the phoQ gene. RNAseq analysis suggested that this mutation locks PhoQ in a constitutively active state. These results indicate that PhoQ activation in Kp209_CSTR leads to both colistin resistance and sensitivity to MAC-mediated killing. Together, our results show that developing colistin resistance can sensitize K. pneumoniae to killing by the immune system.

microbiology↗