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Pietruszka, J.

Publications and source records attributed to Pietruszka, J..

2 recordsLinked to original sources

Hoisted by Their Own Petard: Defeating Immunity Protein-Mediated Bacteriocin Resistance

The irresponsible use of antibiotics has led to an erratic spread of antimicrobial resistance (AMR) among bacterial pathogens. Without intervention, 10 million AMR-related deaths per year by 2050 are estimated by the WHO. Nonetheless, the development of novel antibiotics has almost come to a halt. In this context, naturally occurring narrow-spectrum antimicrobial proteins, known as bacteriocins, are promising alternatives to address the need for effective and selective antimicrobial treatments. However, the widespread distribution of cognate immunity proteins among bacteriocin producers vastly limits the natural antimicrobial spectrum against Gram-negative bacteria. On the example of pyocin S2 (PyoS2), an S-type HNH DNase bacteriocin targeting the opportunistic human pathogen Pseudomonas aeruginosa, this study demonstrates for the first time that a rationally introduced single mutation and chemical protein functionalisation at PyoS2s immunity protein exosite fully eradicate immunity protein-mediated resistance to pyocins in multidrug-resistant clinical P. aeruginosa isolates. The presented findings highlight a strategy to engineer bacteriocins from pathogenic Gram-negative bacteria with an extended antimicrobial spectrum, overruling the prevalent and predominant bacteriocin resistance mechanism of immunity protein binding. This strategy could expedite the development of engineered bacteriocins to expand our repository of antimicrobials to combat the worsening antimicrobial resistance crisis and avert a post-antibiotic era.

microbiology↗

Influence of ionic liquids on enzymatic asymmetric carboligations

The asymmetric mixed carboligation of aldehydes catalyzed by thiamine diphosphate (ThDP)-dependent enzymes provides a sensitive system for monitoring changes in activity, chemo-, and enantioselectivity. While previous studies have shown that organic cosolvents influence these parameters, we now demonstrate that similar effects occur upon addition of water-miscible ionic liquids (ILs). In this study, six ThDP-dependent enzymes were analyzed in the presence of 14 ILs under comparable conditions to assess their influence on enzymatic carboligation reactions yielding 2-hydroxy ketones. ILs exerted a moderate to strong influence on activity and, more notably, altered enantioselectivity. (R)-selective reactions were generally stable upon IL addition, while (S)-selective reactions frequently showed reduced selectivity or even inversion to the (R)-enantiomer. The most significant change was observed for the ApPDC_E469G variant of pyruvate decarboxylase from Acetobacter pasteurianus, where the enantiomeric excess shifted from 86% (S) to 60% (R) in the presence of 9% (w/v) Ammoeng 102. Control experiments indicated that this shift was primarily due to the Ammoeng cation rather than the anion. To explore the molecular basis of this phenomenon, all-atom molecular dynamics (MD) simulations were performed on wild-type ApPDC and the E469G variant in Ammoeng 101 and Ammoeng 102. The simulations revealed that hydrophobic and hydrophilic regions of the Ammoeng cations interact with the (S)-selective binding pocket, thereby favoring formation of the (R)-product. These results highlight the potential of solvent engineering for modulating enzyme selectivity and demonstrate that MD simulations can capture functionally relevant enzyme-solvent interactions at the atomic level.

bioengineering↗