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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Optimization of the antifungal properties of the bacterial peptide EntV by variant analysis
Shantanu Guha1, Shane A Cristy1, Giuseppe Buda De Cesare1
1Department of Microbiology and Molecular Genetics, The University of Texas Health Science Center at Houston, Houston, Texas, USA.
Abstract:
Fungal resistance to commonly used medicines is a growing public health threat, and there is a dire need to develop new classes of antifungals. We previously described a peptide produced by Enterococcus faecalis, EntV, that restricts Candida albicans to a benign form rather than having direct fungicidal activity. Moreover, we showed that one 12-amino acid (aa) alpha helix of this peptide retained full activity, with partial activity down to the 10aa alpha helix. Using these peptides as a starting point, the current investigation sought to identify the critical features necessary for antifungal activity and to screen for new variants with enhanced activity using both biofilm and C. elegans infection assays. First, the short peptides were screened for residues with critical activity by generating alanine substitutions. Based on this information, we used synthetic molecular evolution (SME) to rationally vary the specific residues of the 10aa variant in combination to generate a library that was screened to identify variants with more potent antifungal activity than the parent template. Five gain-of-function peptides were identified. Additionally, chemical modifications to the peptides to increase stability, including substitutions of D-amino acids and hydrocarbon stapling, were investigated. The most promising peptides were additionally tested in mouse models of oropharyngeal and systemic candidiasis where their efficacy in preventing infection was demonstrated. The expectation is that these discoveries will contribute to the development of new therapeutics in the fight against antimicrobial resistant fungi.
Importance:
Since the early 1980s, the incidence of disseminated life-threatening fungal infections has been on the rise. Worldwide, Candida and Cryptococcus species are among the most common agents causing these infections. Simultaneously, with this rise of clinical incidence, there has also been an increased prevalence of antifungal resistance, making treatment of these infections very difficult. For example, there are now strains of Candida auris that are resistant to all three classes of currently used antifungal drugs. In this study, we report on a strategy that allows for the development of novel antifungal agents by using synthetic molecular evolution. These discoveries demonstrate that the enhancement of antifungal activity from naturally occurring peptides is possible and can result in clinically relevant agents that have efficacy in multiple in vivo models as well as the potential for broad-spectrum activity.
Insights
Researchers developed novel antifungal peptides by modifying a natural peptide from Enterococcus faecalis. These enhanced peptides show potent activity against Candida albicans and efficacy in animal models, offering new hope against drug-resistant fungal infections.
Area of Science:
- Microbiology and Infectious Diseases
- Peptide Therapeutics
- Antimicrobial Resistance
Background:
- Fungal infections, particularly those caused by Candida species, are a growing global health concern due to increasing antifungal resistance.
- Existing antifungal drugs are becoming less effective, necessitating the development of novel therapeutic agents.
- Naturally occurring antimicrobial peptides (AMPs) represent a promising source for new antifungal drug discovery.
Purpose of the Study:
- To identify critical residues within a previously described antifungal peptide (EntV) essential for its activity against Candida albicans.
- To generate and screen novel peptide variants with enhanced antifungal potency using synthetic molecular evolution (SME).
- To evaluate the stability and in vivo efficacy of the most promising peptide candidates in preclinical models.
Main Methods:
- Alanine scanning mutagenesis was employed to determine critical amino acid residues for antifungal activity.
- Synthetic molecular evolution (SME) was used to create a library of rationally designed peptide variants.
- Peptide variants were screened using biofilm and Caenorhabditis elegans infection assays, followed by chemical modifications (D-amino acid substitutions, hydrocarbon stapling) to enhance stability.
- Promising candidates were tested in mouse models of oropharyngeal and systemic candidiasis.
Main Results:
- Identification of critical residues within the 10-amino acid alpha-helical domain of the EntV peptide.
- Discovery of five 'gain-of-function' peptide variants with significantly enhanced antifungal activity compared to the parent peptide.
- Demonstrated efficacy of the most potent modified peptides in preventing fungal infections in mouse models.
- Chemical modifications, including D-amino acid substitutions and hydrocarbon stapling, improved peptide stability.
Conclusions:
- Synthetic molecular evolution is an effective strategy for enhancing the antifungal activity of naturally occurring peptides.
- The developed peptide variants exhibit potent activity against Candida and hold promise as novel antifungal therapeutics.
- These findings contribute to the development of new strategies to combat the growing threat of drug-resistant fungal infections.
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