Harnessing random peptide mixtures to combat multidrug-resistant fungal infections

John Adeoye1, Yael Belo2, Marina Campos Rocha1

  • 1Koret School of Veterinary Medicine, Faculty of Agriculture, The Hebrew University, Rehovot, Israel.

Mbio
|April 14, 2026
PubMed

Insights

Novel peptide mixtures (RPMs) show broad-spectrum antifungal activity, particularly against drug-resistant fungi like Candida auris. This promising new class of antifungals inhibits biofilms and has low resistance development potential, offering hope against invasive fungal infections.

Area of Science:

  • Mycology
  • Infectious Diseases
  • Drug Discovery

Background:

  • Invasive fungal infections (IFIs) have high mortality and limited treatment options due to drug resistance.
  • Antifungal drug development lags behind the rising need, especially for multidrug-resistant pathogens like Candida auris.
  • Novel therapeutic strategies are crucial to combat emerging fungal resistance.

Purpose of the Study:

  • To evaluate the antifungal potential of random peptide mixtures (RPMs), specifically FK20 (L-phenylalanine-L-lysine, 20-mer).
  • To assess FK20's activity against major human fungal pathogens, including Candida spp., Cryptococcus neoformans, and Aspergillus fumigatus.
  • To investigate FK20's mechanism of action, resistance development potential, biofilm inhibition, and therapeutic efficacy in vivo.

Main Methods:

  • Synthesis and testing of random peptide mixtures (RPMs) for antifungal activity.
  • Antimicrobial susceptibility testing against key fungal pathogens.
  • Mechanistic studies involving membrane/cell wall disruption and intracellular penetration.
  • Experimental evolution assays to assess resistance development.
  • Biofilm inhibition assays and synergy studies with caspofungin.
  • In vivo efficacy evaluation in a murine model of systemic candidiasis.

Main Results:

  • FK20 demonstrated broad-spectrum antifungal activity, with high potency against Candida auris.
  • Mechanistic studies indicated rapid membrane and cell wall disruption.
  • Experimental evolution revealed a markedly reduced capacity for resistance development in C. auris.
  • FK20 inhibited biofilm formation and showed synergy with caspofungin against mature biofilms.
  • Significant therapeutic efficacy was observed in a murine model of systemic candidiasis.

Conclusions:

  • RPMs, exemplified by FK20, represent a versatile antifungal platform with broad-spectrum activity.
  • FK20 exhibits potent antifungal effects, inhibits biofilms, and possesses a low resistance footprint.
  • These findings highlight RPMs as a promising novel therapeutic strategy against drug-resistant fungal infections.

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