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Fungicidal Potency and Mechanisms of θ-Defensins against Multidrug-Resistant Candida Species
Virginia Basso1, Angie Garcia1, Dat Q Tran1,2
1Department of Pathology and Laboratory Medicine, Norris Comprehensive Cancer Center, Keck School of Medicine, University of Southern California, Los Angeles, California, USA.
Abstract:
Systemic candidiasis is a growing health care concern that is becoming even more challenging due to the growing frequency of infections caused by multidrug-resistant (MDR) Candida species. Thus, there is an urgent need for new therapeutic approaches to candidiasis, including strategies bioinspired by insights into natural host defense against fungal pathogens. The antifungal properties of θ-defensins, macrocyclic peptides expressed in tissues of Old World monkeys, were investigated against a panel of drug-sensitive and drug-resistant clinical isolates of Candida albicans and non-albicans Candida species. Rhesus θ-defensin 1 (RTD-1), the prototype θ-defensin, was rapidly and potently fungicidal against drug-sensitive and MDR C. albicans strains. Fungal killing occurred by cell permeabilization that was temporally correlated with ATP release and intracellular accumulation of reactive oxygen species (ROS). Killing by RTD-1 was compared with that by histatin 5 (Hst 5), an extensively characterized anticandidal peptide expressed in human saliva. RTD-1 killed C. albicans much more rapidly and at a >200-fold lower concentration than that of Hst 5. Unlike Hst 5, the anticandidal activity of RTD-1 was independent of mitochondrial ATP production. Moreover, RTD-1 was completely resistant to Candida proteases for 2 h under conditions that rapidly and completely degraded Hst 5. MICs and minimum fungicidal concentrations (MFCs) of 14 natural θ-defensins isoforms against drug-resistant C. albicans isolates identified peptides that are more active than amphotericin B and/or caspofungin against fluconazole-resistant organisms, including MDR Candida auris. These results point to the potential of macrocyclic θ-defensins as structural templates for the design of antifungal therapeutics.
Insights
Rhesus θ-defensin 1 (RTD-1) shows potent antifungal activity against drug-resistant Candida species by permeabilizing fungal cells. This natural peptide offers a promising template for developing new candidiasis therapeutics.
Area of Science:
- Infectious Diseases
- Microbiology
- Drug Discovery
Background:
- Systemic candidiasis is a growing threat, exacerbated by multidrug-resistant (MDR) Candida species.
- Novel therapeutic strategies are urgently needed, inspired by natural host defense mechanisms.
- θ-defensins, primate-expressed peptides, possess inherent antifungal properties.
Purpose of the Study:
- To investigate the antifungal efficacy of θ-defensins against drug-sensitive and drug-resistant Candida isolates.
- To compare the activity of Rhesus θ-defensin 1 (RTD-1) with human histatin 5 (Hst 5).
- To explore the potential of θ-defensins as templates for new antifungal drug development.
Main Methods:
- Tested 14 natural θ-defensin isoforms against various Candida species, including MDR strains.
- Assessed fungicidal activity, cell permeabilization, ATP release, and reactive oxygen species (ROS) generation.
- Compared RTD-1's efficacy, stability, and mechanism of action to histatin 5 (Hst 5).
Main Results:
- RTD-1 demonstrated rapid and potent fungicidal activity against both drug-sensitive and MDR Candida albicans strains.
- Fungal killing by RTD-1 was linked to cell permeabilization, ATP release, and ROS accumulation.
- RTD-1 exhibited superior speed and potency compared to Hst 5, with enhanced protease resistance and independence from mitochondrial ATP.
Conclusions:
- Macrocyclic θ-defensins, like RTD-1, are effective against drug-resistant Candida, including Candida auris.
- RTD-1's mechanism involves cell permeabilization and is distinct from Hst 5.
- θ-defensins represent promising structural templates for designing novel antifungal therapeutics to combat candidiasis.
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