Heine, Nils; Doll-Nikutta, Katharina; Stein, Frederic; Jakobi, Jurij; Ingendoh-Tsakmakidis, Alexandra; Rehbock, Christoph; Winkel, Andreas; Barcikowski, Stephan; Stiesch, Meike:
Anti-biofilm properties of laser-synthesized, ultrapure silver-gold-alloy nanoparticles against Staphylococcus aureus
In: Scientific Reports, Vol. 14 (2024), No. 1, Article 3405
2024article/chapter in journalOA Gold
ChemistryFaculty of Chemistry » Technische ChemieScientific institutes » Center of Medical Biotechnology (ZMB)
Related: 1 publication(s)
Title in English:
Anti-biofilm properties of laser-synthesized, ultrapure silver-gold-alloy nanoparticles against Staphylococcus aureus
Author:
Heine, Nils
Other
corresponding author
;
Doll-Nikutta, Katharina
;
Stein, Frederic
;
Jakobi, JurijUDE
LSF ID
53232
Other
connected with university
;
Ingendoh-Tsakmakidis, Alexandra
;
Rehbock, ChristophUDE
LSF ID
53195
ORCID
0000-0002-4708-5246ORCID iD
Other
connected with university
;
Winkel, Andreas
;
Barcikowski, StephanUDE
GND
129006084
LSF ID
52773
ORCID
0000-0002-9739-7272ORCID iD
Other
connected with university
;
Stiesch, Meike
Other
corresponding author
Year of publication:
2024
Open Access?:
OA Gold
Web of Science ID
PubMed ID
Scopus ID
Note:
CA extern
Language of text:
English
Type of resource:
Text

Abstract in English:

Staphylococcus aureus biofilm-associated infections are a common complication in modern medicine. Due to inherent resilience of biofilms to antibiotics and the rising number of antibiotic-resistant bacterial strains, new treatment options are required. For this purpose, ultrapure, spherical silver-gold-alloy nanoparticles with homogenous elemental distribution were synthesized by laser ablation in liquids and analyzed for their antibacterial activity on different stages of S. aureus biofilm formation as well as for different viability parameters. First, the effect of nanoparticles against planktonic bacteria was tested with metabolic activity measurements. Next, nanoparticles were incubated with differently matured S. aureus biofilms, which were then analyzed by metabolic activity measurements and three dimensional live/dead fluorescent staining to determine biofilm volume and membrane integrity. It could be shown that AgAu NPs exhibit antibacterial properties against planktonic bacteria but also against early-stage and even mature biofilms, with a complete diffusion through the biofilm matrix. Furthermore, AgAu NPs primarily targeted metabolic activity, to a smaller extend membrane integrity, but not the biofilm volume. Additional molecular analyses using qRT-PCR confirmed the influence on different metabolic pathways, like glycolysis, stress response and biofilm formation. As this shows clear similarities to the mechanism of pure silver ions, the results strengthen silver ions to be the major antibacterial agent of the synthesized nanoparticles. In summary, the results of this study provide initial evidence of promising anti-biofilm characteristics of silver-gold-alloy nanoparticles and support the importance of further translation-oriented analyses in the future.