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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
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.
Abstract:
Streptococcus pyogenes is a causative agent for strep throat, impetigo, and more invasive diseases. The main reason for the treatment failure of streptococcal infections is increased antibiotic resistance. In recent years, infectious diseases caused by pyogenic streptococci resistant to multiple antibiotics have been rising with a significant impact on public health and the veterinary industry. The development of antibiotic resistance and the resulting emergence of multidrug-resistant bacteria have become primary threats to the public health system, commonly leading to nosocomial infections. Many researchers have turned their focus to developing alternative classes of antibacterial agent based on various nanomaterials. We have developed an antibiotic-free nanoparticle system inspired by naturally occurring bacteriophages to fight antibiotic-resistant bacteria. Our phage-mimicking nanoparticles (PhaNPs) display structural mimicry of protein-turret distribution on the head structure of bacteriophages. By mimicking phages, we can take advantage of their evolutionary constant shape and high antibacterial activity while avoiding the immune reactions of the human body experienced by biologically derived phages. We describe the synthesis of hierarchically arranged core-shell nanoparticles, with a silica core conjugated with silver-coated gold nanospheres to which we have chemisorbed the synthetic antimicrobial peptide Syn-71 on the PhaNPs surface, and increased the rapidity of the antibacterial activity of the nanoparticles (PhaNP@Syn71). The antibacterial effect of the PhaNP@Syn71 was tested in vitro and in vivo in mouse wound infection models. In vitro, results showed a dose-dependent complete inhibition of bacterial growth (>99.99%). Cytocompatibility testing on HaCaT human skin keratinocytes showed minimal cytotoxicity of PhaNP@Syn71, being comparable to the vehicle cytotoxicity levels even at higher concentrations, thus proving that our design is biocompatible with human cells. There was a minimum cutoff dosage above which there was no evolution of resistance after prolonged exposure to sub-MIC dosages of PhaNP@Syn71. Application of PhaNP@Syn71 to a mouse wound infection model exhibited high biocompatibility in vivo while showing immediate stabilization of the wound size, and infection free wound healing. Our results suggest the robust utility of antimicrobial peptide-conjugated phage-mimicking nanoparticles as a highly effective antibacterial system that can combat bacterial infections consistently while avoiding the emergence of resistant bacterial strains.
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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