Gold Nanoparticles Coated With the Antimicrobial Peptide Os-C(W5): Anticandidal and Biological Activity

P J Palm1, R R Chirombo1, C K Chiramba2

  • 1Department of Anatomy, Faculty of Health Sciences, University of Pretoria, South Africa.

Insights

Gold nanoparticle conjugation enhances the stability and antibiofilm efficacy of antimicrobial peptide Os-C(W5) against Candida albicans. This strategy improves protease resistance but compromises antioxidant properties.

Area of Science:

  • Nanotechnology
  • Antimicrobial Peptides
  • Mycology

Background:

  • Candida albicans is a significant fungal pathogen with increasing drug resistance and biofilm formation.
  • Tick-derived antimicrobial peptide (AMP) Os-C and its tryptophan-tagged variant Os-C(W5) show antifungal and antioxidant properties.
  • Proteolytic susceptibility of Os-C(W5) limits its therapeutic potential.

Purpose of the Study:

  • To synthesize and characterize gold nanoparticles (GNPs) coated with Os-C(W5) (GNP@Os-C(W5)).
  • To evaluate the antifungal, antibiofilm, and stability properties of GNP@Os-C(W5) compared to free Os-C(W5).
  • To assess the impact of GNP conjugation on the peptide's antioxidant and nitric oxide (NO) scavenging activities.

Main Methods:

  • N-terminal tryptophan tagging of Os-C followed by conjugation to gold nanoparticles.
  • Characterization of GNP@Os-C(W5) size and peptide secondary structure.
  • Assessment of planktonic and biofilm antifungal activity, cytotoxicity, protease resistance, antioxidant capacity, and NO scavenging.

Main Results:

  • GNP@Os-C(W5) nanoparticles averaged 14.2 nm with preserved peptide structure.
  • GNP@Os-C(W5) showed reduced planktonic antifungal activity but maintained significant antibiofilm efficacy, reducing biofilm biomass.
  • GNP conjugation increased trypsin resistance but abolished antioxidant properties; NO scavenging activity was absent in both modified peptides.

Conclusions:

  • GNP conjugation offers a viable strategy for enhancing antimicrobial peptide stability and retaining antibiofilm activity against Candida albicans.
  • The method successfully produced stable nanoparticles with retained antifungal properties, though antioxidant function was compromised.
  • Further research may explore optimizing GNP conjugation to preserve all beneficial peptide activities for therapeutic applications.

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