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Azole-Driven Cross-Resistance and Transporter Gene Expression in Malassezia Yeasts
Ying Zhou Soo1, Shi Mun Lee1, Thomas L Dawson1,2
1A*STAR Skin Research Labs (A*SRL), Agency for Science, Technology and Research (A*STAR) & Skin Research Institute of Singapore (SRIS), 11 Mandalay Rd, #17-01, Singapore 308232, Singapore.
Abstract:
Malassezia are commensal lipid dependent yeasts which can cause opportunistic skin infection. Topical imidazole antifungals such as clotrimazole and ketoconazole are the frontline treatment. However, the tendency of fungal infections to recur, combined with the emergence of multi-azole-resistant Malassezia isolates means that many patients have used these antifungal treatments repeatedly or for extended durations with limited efficacy. While the impact of single azole treatments has been studied, the ability of specific azoles to induce cross-resistance is unclear. Understanding the effect of prior exposure of one treatment on susceptibility to other antifungals is important in the selection of the appropriate treatment to avoid driving the evolution of greater resistance. We previously identified drug transporters from the ATP-Binding Cassette (ABC) and Major Facilitator Superfamily (MFS) to be upregulated on extended exposure to clotrimazole. In this study, we investigated the effect of extended clotrimazole, ketoconazole and fluconazole exposure on antifungal cross-resistance profiles and examined the expression of the MFS transporters OPT1 and FLR1 in resistance emergence. We observed that treatment with clotrimazole was associated with increased cross-resistance to other antifungals. Ketoconazole treatment caused elevated MICs in all tested antifungals that did not decrease after drug removal. These findings advance our understanding of fungal adaptive resistance mechanisms and inform improved antifungal strategies to mitigate resistance development.
Insights
Extended exposure to clotrimazole and ketoconazole antifungals can lead to cross-resistance in Malassezia yeasts. This study reveals how prior antifungal treatments impact susceptibility, informing better strategies against resistant fungal infections.
Area of Science:
- Mycology
- Dermatology
- Antimicrobial Resistance
Background:
- Malassezia yeasts are common causes of opportunistic skin infections.
- Topical imidazoles like clotrimazole and ketoconazole are primary treatments.
- Recurrent infections and multi-azole resistance necessitate understanding cross-resistance patterns.
Purpose of the Study:
- Investigate the impact of extended clotrimazole, ketoconazole, and fluconazole exposure on Malassezia antifungal cross-resistance.
- Examine the role of MFS transporters OPT1 and FLR1 in the development of antifungal resistance.
Main Methods:
- Extended exposure of Malassezia isolates to clotrimazole, ketoconazole, and fluconazole.
- Assessment of minimum inhibitory concentrations (MICs) for various antifungals.
- Analysis of MFS transporter (OPT1, FLR1) expression.
Main Results:
- Clotrimazole exposure led to increased cross-resistance to other antifungals.
- Ketoconazole treatment resulted in elevated MICs for all tested antifungals, persisting after drug removal.
- Upregulation of MFS transporters was observed.
Conclusions:
- Prior exposure to certain azoles, like clotrimazole, can induce cross-resistance in Malassezia.
- Ketoconazole exposure may lead to persistent elevation of MICs, suggesting long-term resistance.
- Findings contribute to understanding fungal adaptive resistance and developing improved antifungal strategies.
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