Peptide-Like Nylon-3 Polymers with Activity against Phylogenetically Diverse, Intrinsically Drug-Resistant Pathogenic

Leslie A Rank1, Naomi M Walsh2, Fang Yun Lim3

  • 1Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin, USA.

Msphere
|May 26, 2018
PubMed

Insights

New nylon-3 polymers show potent antifungal activity against diverse fungal pathogens, including drug-resistant strains. These synthetic materials offer a promising, low-toxicity alternative for treating challenging fungal infections in humans and animals.

Area of Science:

  • Mycology and Infectious Diseases
  • Polymer Science and Biomaterials

Background:

  • Fungal infections pose a growing global health threat, necessitating novel antifungal agents.
  • Host defense peptides (HDPs) are natural antimicrobial compounds with therapeutic potential.
  • Existing antifungal drugs face challenges with resistance and toxicity.

Purpose of the Study:

  • To evaluate the antifungal efficacy of synthetic nylon-3 polymers, analogs of HDPs.
  • To assess the activity of these polymers against a broad range of pathogenic fungi.
  • To determine the safety profile of nylon-3 polymers against mammalian cells.

Main Methods:

  • Synthesis and characterization of three nylon-3 (poly-β-amino acid) polymers.
  • In vitro testing of polymer activity against 41 fungal species from 18 pathogenic genera.
  • Evaluation of polymer toxicity in mammalian cell lines.

Main Results:

  • Three nylon-3 polymers demonstrated high efficacy against a phylogenetically diverse array of fungi, including yeasts, dermatophytes, dimorphic fungi, and molds.
  • Polymers were effective against drug-resistant fungi, such as azole-resistant strains and agents of mucormycosis.
  • Sensitive pathogens included *Candida auris* and *Pseudogymnoascus destructans*.
  • Polymers exhibited low toxicity to mammalian cells.

Conclusions:

  • Nylon-3 polymers represent a novel class of broad-spectrum antifungal agents with potential therapeutic applications.
  • Their stability, cost-effective production, and tunable properties make them attractive candidates for combating emerging and resistant fungal infections.
  • These synthetic polymers could address the urgent need for effective and safe antifungal treatments.

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