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.
Abstract:
Understanding the dimensions of fungal diversity has major implications for the control of diseases in humans, plants, and animals and in the overall health of ecosystems on the planet. One ancient evolutionary strategy organisms use to manage interactions with microbes, including fungi, is to produce host defense peptides (HDPs). HDPs and their synthetic analogs have been subjects of interest as potential therapeutic agents. Due to increases in fungal disease worldwide, there is great interest in developing novel antifungal agents. Here we describe activity of polymeric HDP analogs against fungi from 18 pathogenic genera composed of 41 species and 72 isolates. The synthetic polymers are members of the nylon-3 family (poly-β-amino acid materials). Three different nylon-3 polymers show high efficacy against surprisingly diverse fungi. Across the phylogenetic spectrum (with the exception of Aspergillus species), yeasts, dermatophytes, dimorphic fungi, and molds were all sensitive to the effects of these polymers. Even fungi intrinsically resistant to current antifungal drugs, such as the causative agents of mucormycosis (Rhizopus spp.) and those with acquired resistance to azole drugs, showed nylon-3 polymer sensitivity. In addition, the emerging pathogens Pseudogymnoascus destructans (cause of white nose syndrome in bats) and Candida auris (cause of nosocomial infections of humans) were also sensitive. The three nylon-3 polymers exhibited relatively low toxicity toward mammalian cells. These findings raise the possibility that nylon-3 polymers could be useful against fungi for which there are only limited and/or no antifungal agents available at present.IMPORTANCE Fungi reside in all ecosystems on earth and impart both positive and negative effects on human, plant, and animal health. Fungal disease is on the rise worldwide, and there is a critical need for more effective and less toxic antifungal agents. Nylon-3 polymers are short, sequence random, poly-β-amino acid materials that can be designed to manifest antimicrobial properties. Here, we describe three nylon-3 polymers with potent activity against the most phylogenetically diverse set of fungi evaluated thus far in a single study. In contrast to traditional peptides, nylon-3 polymers are highly stable to proteolytic degradation and can be produced efficiently in large quantities at low cost. The ability to modify nylon-3 polymer composition easily creates an opportunity to tailor efficacy and toxicity, which makes these materials attractive as potential broad-spectrum antifungal therapeutics.
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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