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Updated: Jan 14, 2026

Synthesis of an Intein-mediated Artificial Protein Hydrogel
Published on: January 27, 2014
Enhancing stability and safety of chimeric peptidoglycan hydrolases by linker engineering
Paweł Mitkowski1,2, Elżbieta Jagielska1, Małgorzata Korzeniowska Nee Wiweger1
1Laboratory of Protein Engineering, Mossakowski Medical Research Institute Polish Academy of Sciences, Warsaw, Poland.
None:
Spread of antimicrobial resistance and lack of new antibiotics have brought attention to alternative strategies of combating pathogenic bacteria. One of these strategies takes advantage of the bacteriolytic activity of peptidoglycan hydrolases. The enzymes allow efficient elimination of pathogenic bacteria while preserving the natural microflora. Such enzymes must meet specific criteria of activity, stability, and safety to become efficient enzybiotics. In our previous work (10.1128/spectrum.03546-23), we have created three chimeric enzymes and demonstrated their high efficacy in the elimination of Enterococcus faecalis and Staphylococcus aureus. In this work, we investigated and addressed issues related to the stability and safety of these enzymes. To improve the stability, we engineered the linkers and optimized storage conditions. Moreover, we demonstrated that such enzymes do not have any cytotoxic effects on eukaryotic cells, Danio rerio or Galleria mellonella. We also investigated the prevalence of resistance development, a particularly important feature for new antimicrobials. In conclusion, we here propose efficient, safe, and stable chimeric enzybiotics to eliminate E. faecalis and S. aureus. KEY POINTS: • Optimized linker design enhances enzyme stability. • Generated chimeric lysins do not display cytotoxicity. • Chimeras with minimal risk of resistance development were selected.
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