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Beenker, W. A.

Publications and source records attributed to Beenker, W. A..

3 recordsLinked to original sources

Establishment and characterization of a new Pseudomonas aeruginosa infection model using 2D airway organoids and dual RNA sequencing

Pseudomonas aeruginosa is a Gram-negative bacterium that is notorious for infections in the airway of cystic fibrosis (CF) subjects. Often, these infections become chronic, leading to higher morbidity and mortality rates. Bacterial quorum sensing (QS) coordinates the expression of virulence factors and the formation of biofilms at a population level. QS has become the focus of attention for development of alternatives to antimicrobials targeting P. aeruginosa infections. However, a better understanding of the bacteria-host interaction, and the role of QS in infection, is required. In this study, we set up a new P. aeruginosa infection model, using 2D airway organoids derived from healthy and CF individuals. Using dual RNA-sequencing, we dissected their interaction, focusing on the role of QS. As expected, P. aeruginosa induced epithelial inflammation. However, QS signaling did not affect the epithelial airway cells. The epithelium influenced several infection-related processes of P. aeruginosa, including metabolic changes, induction of type 3 and type 6 secretion systems (T3SS and T6SS), and increased expression of antibiotic resistance genes, including mexXY efflux pump and several porins. Interestingly, the epithelium influenced the regulation by QS of the type 2 (T2SS) and T6SS. Finally, we compared our model with in vivo P. aeruginosa transcriptomic datasets, from samples directly isolated from the airways of CF subjects. This shows that our model recapitulates important aspects of in vivo infection, like enhanced denitrification, betaine/choline metabolism, increased antibiotic resistance, as well as an overall decrease of motility-related genes. This relevant infection model is interesting for future investigations, helping to reduce the burden of P. aeruginosa infections in CF.

microbiology↗

Paecilomycone inhibits quorum sensing in Gram-negative bacteria

Pseudomonas aeruginosa is an opportunistic pathogen that causes major healthcare concerns due to its virulence and high intrinsic resistance to antimicrobial agents. Therefore, new treatments are highly needed. An interesting approach is to target quorum sensing (QS). QS regulates the production of a wide variety of virulence factors and biofilm formation in P. aeruginosa. This study describes the identification of paecilomycone as inhibitor of QS in both C. violaceum and P. aeruginosa. Paecilomycone strongly inhibited the production of virulence factors, including various phenazines, and biofilm formation. In search of the working mechanism, we found that paecilomycone inhibited the production of 4-hydroxy-2-heptylquinoline (HHQ) and 3,4- dihydroxy-2-heptylquinoline (PQS), but not 2-aminoacetophenone (2-AA). We suggest that paecilomycone affects QS in P. aeruginosa by targeting the PqsBC complex and alternative targets, or alters processes that influence the enzymatic activity of the PqsBC complex. The toxicity of paecilomycone towards eukaryotic cells and organisms was low, making it an interesting lead for further clinical research. ImportanceAntibiotics are becoming less effective against bacterial infections due to the evolution of resistance among bacteria. Pseudomonas aeruginosa is a Gram-negative pathogen that causes major healthcare concerns and is difficult to treat due to its high intrinsic resistance to antimicrobial agents. Therefore, new targets are needed and an interesting approach is to target quorum sensing (QS). QS is the communication system in bacteria that regulates multiple pathways including the production of virulence factors and biofilm formation, which leads to high toxicity in the host and low sensitivity to antibiotics, respectively. We found a compound, named paecilomycone, which inhibited biofilm formation and the production of various virulence factors in P. aeruginosa. The toxicity of paecilomycone towards eukaryotic cells and organisms was low, making it an interesting lead for further clinical research.

microbiology↗

Harzianic Acid has multi-target antimicrobial activity against Gram-Positive Bacteria

The thermophilic fungus Oidiodendron flavum is a saprobe that is commonly isolated from soil. Here, we identified a Gram-positive bacteria-selective antimicrobial secondary metabolite from this fungal species, harzianic acid (HA). Using Bacillus subtilis strain 168 combined with several assays, we found that HA targeted the cell membrane, though only at high concentrations. To further study the antimicrobial activity of HA, we isolated an HA-resistant strain, Bacillus subtilis strain M9015, and discovered that the mutant has more translucent colonies, has cross resistance to rifampin, and harbors five mutations in the coding region of four distinct genes. Further analysis of these genes indicated that the mutation in atpE might be responsible for the translucency of the colony, and mutation in yusO for resistance to both HA and rifampin. We conclude that HA is a multi-target antimicrobial agent against Gram-positive bacteria.

microbiology↗