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Biology subjects

Stensen, W.

Publications and source records attributed to Stensen, W..

2 recordsLinked to original sources

Preventing E. coli biofilm formation with antimicrobial peptide surface coatings: recognizing the dependence on the bacterial binding mode using live-cell microscopy

Antimicrobial peptides (AMPs) can kill bacteria by destabilizing their membranes, yet, to translate these molecules properties into a covalently attached coating is challenging. Standard microbiology methods do not work well for grafted AMPs, particularly it is difficult to distinguish the AMPs bactericidal potency from factors relating to bacterias binding behavior, e.g., which type of and how persistent bacteria-surface contacts that is necessary. Here we present a method combining live-cell microscopy and microfluidics to study the response of E. coli challenged by the same small AMP either in solution or grafted to the surface through click chemistry. The AMP coating initially suppressed bacterial growth as strongly as AMPs in solution. While AMPs in solution eventually killed the E. coli bacteria, those binding to the AMP coating changed contact mode one hour after binding and then became insensitive to it. The transition depended on binding-induced expression of Type 1 fimbriae, which limits contact between the AMPs and the E. coli outer membrane. By quantifying several different factors contributing to the antibacterial efficacy, these measurements provide a holistic understanding of how antibacterial surface coatings function. We therefore expect this tool to be important for the design of elaborate antibacterial coatings that can reduce the need for antibiotics and thus contribute to slower spreading of antibiotic resistance genes.

microbiology↗

Lateral membrane organization as target of an antimicrobial peptidomimetic compound

Antimicrobial resistance is one of the leading concerns in medical care. Here we resolve the functional mechanism of the antimicrobial action of the cationic tripeptide AMC-109 by combining high speed-atomic force microscopy, molecular dynamics, fluorescence assays, and lipidomic analysis. We show that AMC-109 activity on the negatively charged plasma membrane of Staphylococcus aureus consists of two crucial steps. First, AMC-109 self-assembles into stable aggregates with specificity for negatively charged membranes. Second, by incorporation into the S. aureus membrane the lateral membrane organization is affected, dissolving membrane nanodomains. Domain dissolution affects membrane functions such as protein sorting and cell wall synthesis, and is suggested to cause a loss of resistance of methicillin-resistant S. aureus (MRSA) to methicillin. As the AMC-109 mode of action is similar to the activity of the disinfectant benzalkonium chloride (BAK), a broad applicability, but with low cytotoxicity to human cells, is expected.

biophysics↗