Antimicrobial peptide-conjugated phage-mimicking nanoparticles exhibit potent bactericidal action against

Johanna Olesk1, Deborah Donahue2, Jessica Ross3

  • 1Department of Aerospace and Mechanical Engineering, University of Notre Dame Notre Dame Indiana USA pnallath@nd.edu +1 574 631 7868.

Nanoscale Advances
|February 15, 2024
PubMed

Insights

Antibiotic resistance is a growing threat. Researchers developed phage-mimicking nanoparticles (PhaNPs) with antimicrobial peptides that effectively kill antibiotic-resistant bacteria like Streptococcus pyogenes with minimal cytotoxicity and no observed resistance development.

Area of Science:

  • Nanotechnology
  • Materials Science
  • Infectious Diseases

Background:

  • Antibiotic resistance in bacteria, particularly *Streptococcus pyogenes*, poses a significant public health threat, leading to treatment failures and nosocomial infections.
  • The rise of multidrug-resistant bacteria necessitates the development of alternative antibacterial strategies beyond traditional antibiotics.
  • Nanomaterials offer a promising avenue for creating novel antibacterial agents.

Purpose of the Study:

  • To develop an antibiotic-free nanoparticle system that mimics bacteriophages to combat antibiotic-resistant bacteria.
  • To synthesize and characterize phage-mimicking nanoparticles conjugated with a synthetic antimicrobial peptide (PhaNP@Syn71).
  • To evaluate the *in vitro* and *in vivo* efficacy and biocompatibility of the developed nanoparticle system.

Main Methods:

  • Synthesis of core-shell nanoparticles (silica core, silver-coated gold nanospheres) designed to mimic bacteriophage structure.
  • Conjugation of a synthetic antimicrobial peptide (Syn-71) onto the nanoparticle surface to create PhaNP@Syn71.
  • In vitro assessment of antibacterial activity against *Streptococcus pyogenes* and cytocompatibility testing on human keratinocytes.
  • In vivo evaluation of PhaNP@Syn71 in a mouse wound infection model.

Main Results:

  • PhaNP@Syn71 demonstrated dose-dependent complete inhibition of bacterial growth (>99.99%) *in vitro*.
  • The nanoparticles exhibited minimal cytotoxicity to human skin cells, comparable to vehicle controls, indicating good biocompatibility.
  • No significant bacterial resistance evolved after prolonged exposure to sub-minimum inhibitory concentrations of PhaNP@Syn71.
  • In vivo studies showed immediate wound stabilization, infection-free healing, and high biocompatibility in a mouse model.

Conclusions:

  • Antimicrobial peptide-conjugated phage-mimicking nanoparticles (PhaNP@Syn71) represent a potent and biocompatible antibacterial system.
  • This novel system effectively combats antibiotic-resistant bacterial infections while circumventing the development of resistance.
  • PhaNP@Syn71 holds significant potential as an alternative therapeutic strategy against challenging bacterial infections.

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