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Updated: Jan 1, 2026

Quantifying the Antifungal Activity of Peptides Against Candida albicans
Published on: January 13, 2023
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.
Abstract:
Invasive fungal infections, such as cryptococcosis and paracoccidioidomycosis are associated with significant rates of morbidity and mortality. Cryptococcosis, caused by Cryptococcus neoformans, is distributed worldwide and has received much attention as a common complication in patients with HIV. Invasive fungal infections are usually treated with a combination of amphotericin B and azoles. In addition, 5-fluorocytosine (5-FC) is applied in cryptococcosis, specifically to treat central nervous system infection. However, host toxicity, high cost, emerging number of resistant strains, and difficulty in developing new selective antifungals pose challenges. The need for new antifungals has therefore prompted a screen for inhibitory peptides, which have multiple mechanisms of action. The honeycomb moth Galleria mellonella has been widely used as a model system for evaluating efficacy of antifungal agents. In this study, a peptide analog from the mastoparan class of wasps (MK58911) was tested against Cryptococcus spp. and Paracoccidioides spp. In addition, peptide toxicity tests on lung fibroblasts (MRC5) and glioblastoma cells (U87) were performed. Subsequent tests related to drug interaction and mechanism of action were also performed, and efficacy and toxicity of the peptide were evaluated in vivo using the G. mellonella model. Our results reveal promising activity of the peptide, with an MIC in the range of 7.8-31.2 μg/mL, and low toxicity in MRC and U87 cells (IC50 > 500 μg/mL). Taken together, these results demonstrate that MK58911 is highly toxic in fungal cells, but not mammalian cells (SI > 16). The mechanism of toxicity involved disruption of the plasma membrane, leading to death of the fungus mainly by necrosis. In addition, no interaction with the drugs amphotericin B and fluconazole was found either in vitro or in vivo. Finally, the peptide showed no toxic effects on G. mellonella, and significantly enhanced survival rates of larvae infected with C. neoformans. Although not statistically significant, treatment of larvae with all doses of MK58911 showed a similar trend in decreasing the fungal burden of larvae. These effects were independent of any immunomodulatory activity. Overall, these results present a peptide with potential for use as a new antifungal drug to treat systemic mycoses.
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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