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.

Microorganisms
|June 26, 2026
PubMed

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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