Logo of Robert Koch InstituteLogo of Robert Koch Institute
Publication Server of Robert Koch Instituteedoc
de|en
View Item 
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
View Item 
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
2024-10-03Zeitschriftenartikel
Targeting Pseudomonas aeruginosa biofilm with an evolutionary trained bacteriophage cocktail exploiting phage resistance trade-offs
Kunisch, Fabian
Campobasso, Claudia
Wagemans, Jeroen
Yildirim, Selma
Chan, Benjamin K.
Schaudinn, Christoph
Lavigne, Rob
Turner, Paul E.
Raschke, Michael J.
Trampuz, Andrej
Gonzalez Moreno, Mercedes
Spread of multidrug-resistant Pseudomonas aeruginosa strains threatens to render currently available antibiotics obsolete, with limited prospects for the development of new antibiotics. Lytic bacteriophages, the viruses of bacteria, represent a path to combat this threat. In vitro-directed evolution is traditionally applied to expand the bacteriophage host range or increase bacterial suppression in planktonic cultures. However, while up to 80% of human microbial infections are biofilm-associated, research towards targeted improvement of bacteriophages’ ability to combat biofilms remains scarce. This study aims at an in vitro biofilm evolution assay to improve multiple bacteriophage parameters in parallel and the optimisation of bacteriophage cocktail design by exploiting a bacterial bacteriophage resistance trade-off. The evolved bacteriophages show an expanded host spectrum, improved antimicrobial efficacy and enhanced antibiofilm performance, as assessed by isothermal microcalorimetry and quantitative polymerase chain reaction, respectively. Our two-phage cocktail reveals further improved antimicrobial efficacy without incurring dual-bacteriophage-resistance in treated bacteria. We anticipate this assay will allow a better understanding of phenotypic-genomic relationships in bacteriophages and enable the training of bacteriophages against other desired pathogens. This, in turn, will strengthen bacteriophage therapy as a treatment adjunct to improve clinical outcomes of multidrug-resistant bacterial infections.
Files in this item
Thumbnail
s41467-024-52595-w.pdf — Adobe PDF — 3.847 Mb
MD5: 0089eb243231d8496647ca66fdc20764
Cite
BibTeX
EndNote
RIS
(CC BY 3.0 DE) Namensnennung 3.0 Deutschland(CC BY 3.0 DE) Namensnennung 3.0 Deutschland
Details
Terms of Use Imprint Policy Data Privacy Statement Contact

The Robert Koch Institute is a Federal Institute

within the portfolio of the Federal Ministry of Health

© Robert Koch Institute

All rights reserved unless explicitly granted.