Antifungal Activity, Toxicity, and Membranolytic Action of a Mastoparan Analog Peptide

Junya de Lacorte Singulani1, Mariana Cristina Galeane1, Marina Dorisse Ramos1

  • 1Department of Clinical Analysis, School of Pharmaceutical Sciences, São Paulo State University-UNESP, Araraquara, Brazil.

Insights

A novel peptide, MK58911, shows potent antifungal activity against invasive fungal infections like cryptococcosis. It effectively targets fungal cells while exhibiting low toxicity to mammalian cells, offering a promising new therapeutic option.

Area of Science:

  • Mycology and Infectious Diseases
  • Peptide Therapeutics
  • Drug Discovery and Development

Background:

  • Invasive fungal infections (IFIs), including cryptococcosis and paracoccidioidomycosis, cause significant morbidity and mortality.
  • Current antifungal treatments face challenges like host toxicity, drug resistance, and high costs.
  • There is a critical need for novel antifungal agents with unique mechanisms of action.

Purpose of the Study:

  • To evaluate the antifungal activity and toxicity of a novel mastoparan-class peptide analog, MK58911.
  • To assess the peptide's efficacy and safety in preclinical models, including *in vitro* and *in vivo* studies.
  • To investigate the mechanism of action and potential drug interactions of MK58911.

Main Methods:

  • Minimum Inhibitory Concentration (MIC) and toxicity assays were performed on *Cryptococcus* spp., *Paracoccidioides* spp., human lung fibroblasts (MRC5), and glioblastoma cells (U87).
  • Mechanism of action, drug-drug interactions with amphotericin B and fluconazole, and *in vivo* efficacy were evaluated using the *Galleria mellonella* infection model.
  • Toxicity in the *Galleria mellonella* model was assessed.

Main Results:

  • MK58911 demonstrated potent antifungal activity with MICs ranging from 7.8-31.2 μg/mL and low mammalian cell toxicity (IC50 > 500 μg/mL), yielding a selectivity index (SI) > 16.
  • The peptide's mechanism of toxicity involved plasma membrane disruption, leading to fungal necrosis.
  • MK58911 showed no adverse interactions with amphotericin B or fluconazole and enhanced survival rates in *G. mellonella* larvae infected with *C. neoformans*.

Conclusions:

  • The peptide MK58911 exhibits significant antifungal potential against systemic mycoses.
  • Its targeted toxicity towards fungal cells and low mammalian toxicity profile make it a promising candidate for new antifungal drug development.
  • Further investigation into MK58911 is warranted for its potential clinical application.

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