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Updated: Jul 26, 2025

Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Small molecules restore azole activity against drug-tolerant and drug-resistant Candida isolates
Philip E Alabi1,2, Cécile Gautier3, Thomas P Murphy4
1Department of Chemistry, Brown University , Providence, Rhode Island, USA.
Abstract:
Each year, fungi cause more than 1.5 billion infections worldwide and have a devastating impact on human health, particularly in immunocompromised individuals or patients in intensive care units. The limited antifungal arsenal and emerging multidrug-resistant species necessitate the development of new therapies. One strategy for combating drug-resistant pathogens is the administration of molecules that restore fungal susceptibility to approved drugs. Accordingly, we carried out a screen to identify small molecules that could restore the susceptibility of pathogenic Candida species to azole antifungals. This screening effort led to the discovery of novel 1,4-benzodiazepines that restore fluconazole susceptibility in resistant isolates of Candida albicans, as evidenced by 100-1,000-fold potentiation of fluconazole activity. This potentiation effect was also observed in azole-tolerant strains of C. albicans and in other pathogenic Candida species. The 1,4-benzodiazepines selectively potentiated different azoles, but not other approved antifungals. A remarkable feature of the potentiation was that the combination of the compounds with fluconazole was fungicidal, whereas fluconazole alone is fungistatic. Interestingly, the potentiators were not toxic to C. albicans in the absence of fluconazole, but inhibited virulence-associated filamentation of the fungus. We found that the combination of the potentiators and fluconazole significantly enhanced host survival in a Galleria mellonella model of systemic fungal infection. Taken together, these observations validate a strategy wherein small molecules can restore the activity of highly used anti-infectives that have lost potency. IMPORTANCE In the last decade, we have been witnessing a higher incidence of fungal infections, due to an expansion of the fungal species capable of causing disease (e.g., Candida auris), as well as increased antifungal drug resistance. Among human fungal pathogens, Candida species are a leading cause of invasive infections and are associated with high mortality rates. Infections by these pathogens are commonly treated with azole antifungals, yet the expansion of drug-resistant isolates has reduced their clinical utility. In this work, we describe the discovery and characterization of small molecules that potentiate fluconazole and restore the susceptibility of azole-resistant and azole-tolerant Candida isolates. Interestingly, the potentiating 1,4-benzodiazepines were not toxic to fungal cells but inhibited their virulence-associated filamentous growth. Furthermore, combinations of the potentiators and fluconazole decreased fungal burdens and enhanced host survival in a Galleria mellonella model of systemic fungal infections. Accordingly, we propose the use of novel antifungal potentiators as a powerful strategy for addressing the growing resistance of fungi to clinically approved drugs.
Insights
Researchers discovered novel 1,4-benzodiazepines that restore susceptibility to fluconazole in drug-resistant fungi. These compounds enhance antifungal activity and improve host survival in infection models.
Area of Science:
- Mycology
- Infectious Diseases
- Medicinal Chemistry
Background:
- Fungal infections, particularly those caused by Candida species, are a growing global health concern.
- Increasing antifungal drug resistance limits treatment options for invasive fungal infections.
- Azole antifungals are widely used but face challenges from resistant and tolerant fungal strains.
Purpose of the Study:
- To identify small molecules that can restore susceptibility to azole antifungals in pathogenic Candida species.
- To characterize novel compounds that potentiate the activity of existing antifungal drugs.
- To evaluate the efficacy of these compounds in preclinical models of fungal infection.
Main Methods:
- Screening for small molecules that restore azole susceptibility in Candida species.
- Characterization of identified 1,4-benzodiazepines for their potentiation effects on fluconazole and other azoles.
- Assessment of compound toxicity, impact on fungal virulence, and in vivo efficacy in a Galleria mellonella model.
Main Results:
- Discovery of novel 1,4-benzodiazepines that restore fluconazole susceptibility in resistant and tolerant Candida isolates, with 100-1,000-fold potentiation.
- Demonstration that these compounds selectively potentiate azoles and render fluconazole fungicidal.
- Inhibition of fungal virulence-associated filamentation and enhanced host survival in a systemic infection model.
Conclusions:
- Novel 1,4-benzodiazepines represent a promising strategy to overcome antifungal drug resistance.
- These potentiators restore the efficacy of established antifungals and possess anti-virulence properties.
- Combining these small molecules with existing antifungals could be a viable therapeutic approach for invasive fungal infections.

