Antimicrobial properties of ternary eutectic aluminum alloys.
Claudia HahnMichael HansChristina HeinAnne DennstedtFrank MücklichPetra RettbergChristine Elisabeth HellwegLars Ingo LeichertChristopher RensingRalf MoellerPublished in: Biometals : an international journal on the role of metal ions in biology, biochemistry, and medicine (2018)
Several Escherichia coli deletion mutants of the Keio collection were selected for analysis to better understand which genes may play a key role in copper or silver homeostasis. Each of the selected E. coli mutants had a deletion of a single gene predicted to encode proteins for homologous recombination or contained functions directly linked to copper or silver transport or transformation. The survival of these strains on pure copper surfaces, stainless steel, and alloys of aluminum, copper and/or silver was investigated. When exposed to pure copper surfaces, E. coli ΔcueO was the most sensitive, whereas E. coli ΔcopA was the most resistant amongst the different strains tested. However, we observed a different trend in sensitivities in E. coli strains upon exposure to alloys of the system Al-Ag-Cu. While minor antimicrobial effects were detected after exposure of E. coli ΔcopA and E. coli ΔrecA to Al-Ag alloys, no effect was detected after exposure to Al-Cu alloys. The release of copper ions and cell-associated copper ion concentrations were determined for E. coli ΔcopA and the wild-type E. coli after exposure to pure copper surfaces. Altogether, compared to binary alloys, ternary eutectic alloys (Al-Ag-Cu) had the highest antimicrobial effect and thus, warrant further investigation.
Keyphrases
- escherichia coli
- oxide nanoparticles
- biofilm formation
- gold nanoparticles
- wild type
- quantum dots
- staphylococcus aureus
- klebsiella pneumoniae
- stem cells
- dna damage
- ionic liquid
- single cell
- gene expression
- dna methylation
- copy number
- cell therapy
- mesenchymal stem cells
- high resolution
- pseudomonas aeruginosa
- metal organic framework