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Azole resistance mechanisms in pathogenic M. furfur
Cheryl Leong1, Joel Chan Wai Kit1, Shi Mun Lee1
1Skin Research Institute of Singapore, Agency for Science, Technology and Research (A*STAR), Singapore, Singapore.
Abstract:
Malassezia are emerging fungal pathogens causing opportunistic skin and severe systemic infection. Nosocomial outbreaks are associated with azole resistance and understanding of the underlying mechanisms are limited to knowledge from other fungal species. Herein, we identified distinct antifungal susceptibility patterns in 26 Malassezia furfur isolates derived from healthy and diseased individuals. A Y67F CYP51 mutation was identified in five isolates of M. furfur However, this mutation alone was insufficient to induce reduce azole susceptibility in the wild type strain. RNA-seq and differential gene analysis of healthy and disease derived strains exposed to clotrimazole in vitro identified several key metabolic pathways and transporter proteins which are involved in reduce azole susceptibility. The pleiotropic drug transporter PDR10 was the single most highly upregulated transporter gene in multiple strains of M. furfur after azole treatment and increased expression of PDR10 is associated with reduced azole susceptibility in some systemic disease isolates of M. furfur Deletion of PDR10 in a pathogenic M. furfur strain with reduced susceptibility reduced MIC values to the level of that in susceptible isolates. The current dearth of antifungal technologies, globally emerging multi-azole resistance, and broad agriculture and consumer care use of azoles means improved understanding of the mechanisms underlying intrinsic and acquired azole resistance in Malassezia is crucial for development of antibiotic stewardship and antifungal treatment strategies.
Insights
Malassezia furfur exhibits azole resistance due to increased PDR10 transporter expression, not solely CYP51 mutations. Understanding these mechanisms is vital for combating fungal infections.
Area of Science:
- Medical Mycology
- Antimicrobial Resistance
- Fungal Pathogenesis
Background:
- Malassezia species are opportunistic pathogens causing skin and systemic infections.
- Nosocomial outbreaks are linked to azole resistance, with limited understanding in Malassezia.
- Distinct antifungal susceptibility patterns exist within Malassezia furfur isolates.
Purpose of the Study:
- Investigate azole resistance mechanisms in Malassezia furfur.
- Identify genetic and molecular factors contributing to reduced azole susceptibility.
- Inform antifungal stewardship and treatment strategies.
Main Methods:
- Antifungal susceptibility testing of 26 Malassezia furfur isolates.
- Genomic analysis for mutations (e.g., Y67F CYP51).
- RNA-sequencing and differential gene expression analysis after clotrimazole exposure.
- Gene deletion studies (PDR10) to assess functional impact.
Main Results:
- A Y67F CYP51 mutation was found but insufficient alone for resistance.
- RNA-seq identified key metabolic pathways and transporters involved in resistance.
- PDR10 was the most upregulated transporter gene post-azole treatment.
- Increased PDR10 expression correlated with reduced azole susceptibility in some isolates.
- PDR10 deletion restored azole susceptibility in a resistant strain.
Conclusions:
- PDR10 upregulation is a key mechanism for azole resistance in Malassezia furfur.
- Understanding Malassezia azole resistance is critical due to emerging multi-drug resistance.
- This research aids in developing new antifungal treatments and strategies.
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