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Published on: April 21, 2023
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.
Abstract:
Candida albicans is a critical-priority fungal pathogen due to its global burden of infection, biofilm-forming ability, and increasing drug resistance. Previously, the tick-derived antimicrobial peptide (AMP), Os-C, demonstrated antifungal, antioxidant, and nitric oxide (NO) scavenging activity. Subsequent tryptophan end-tagging produced Os-C(W5) which improved antifungal activity and reduced salt sensitivity; however, the proteolytic susceptibility of Os-C(W5) remained a limitation. Researchers have shown that N-terminal tryptophan tagging of a gold binding peptide generated gold nanoparticle (GNPs) of a clinically relevant size. We successfully applied this method with minor modifications to generate GNPs coated with Os-C(W5). GNP@Os-C(W5) exhibited an average diameter of 14.2 ± 0.32 nm, with preserved peptide disorder in peptide secondary structure after conjugation. Compared with free Os-C(W5), GNP@Os-C(W5) activity against planktonic C. albicans was reduced, but antibiofilm activity was maintained, associated with a reduction in biofilm biomass. Ultrastructural changes to planktonic C. albicans included roughened and irregular surfaces, membrane indentations, and extracellular debris indicating cell lysis. Samples treated with Os-C(W5) and GNP@Os-C(W5) showed visibly less dense biofilm architecture and fewer apparent hyphal structures relative to the untreated control. Both Os-C(W5) and GNP@Os-C(W5) were non-cytotoxic to HaCat cells. Most importantly, resistance to the protease trypsin was increased. However, antioxidant properties of Os-C(W5) were lost with GNP conjugation, whereas both Os-C(W5) and GNP@Os-C(W5) compared with Os-C lacked NO scavenging activity. Overall, this method of GNP conjugation provides a viable strategy to achieve enhanced AMP stability, retained antifungal activity, although the ability of GNP@Os-C(W5) to reduce oxidative stress was compromised.
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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