Minimal domain peptides derived from enterocins exhibit potent antifungal activity

Dorrian G Cohen1, Theresa M Heidenreich1, Jason W Schorey2

  • 1Department of Biological Sciences, University of Notre Dame, Notre Dame, IN, United States.

PubMed

Insights

Engineered antimicrobial peptides (AMPs) derived from enterocin AS-48 show potent antifungal activity against Cryptococcus neoformans and Candida albicans. These novel peptides demonstrate low cytotoxicity and comparable efficacy to fluconazole, offering new treatment avenues for fungal infections.

Area of Science:

  • Microbiology
  • Biochemistry
  • Drug Discovery

Background:

  • Antimicrobial peptides (AMPs) like enterocin AS-48 possess broad-spectrum antibacterial properties by disrupting bacterial membranes.
  • A key alpha-helical region of enterocin AS-48 mediates its membrane-penetrating activity.
  • The emergence of antifungal resistance necessitates the development of novel therapeutic agents.

Purpose of the Study:

  • To explore the potential antifungal activity of engineered enterocin AS-48 derived peptides against clinically relevant fungal pathogens.
  • To identify and characterize novel antifungal peptides with low cytotoxicity.
  • To investigate the mechanism of action of promising antifungal peptide candidates.

Main Methods:

  • A library of 95 synthetic peptide variants was generated from enterocin AS-48 using rational design.
  • Peptides were screened for antifungal activity against *Cryptococcus neoformans*, *Candida albicans*, and *Candida auris*.
  • Cytotoxicity was assessed using an immortalized human keratinocyte cell line (HaCats).
  • Minimum inhibitory concentrations (MICs) were determined, and mechanism of action was explored using mutant screening.

Main Results:

  • Twelve peptides showed activity against *C. neoformans*, and two against *C. albicans*.
  • All active antifungal peptides exhibited minimal cytotoxicity to HaCats.
  • Four peptides had MICs below 8 µM against *C. neoformans*.
  • Peptide no. 32 demonstrated efficacy comparable to fluconazole against *C. neoformans* and may target multivesicular bodies or the polysaccharide capsule.

Conclusions:

  • Naturally derived AMPs can be engineered into potent antifungal agents.
  • Engineered enterocin AS-48 peptides represent a promising new class of antifungal therapeutics.
  • These findings offer potential treatment alternatives for challenging fungal infections, particularly those caused by *C. neoformans*.

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