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Updated: Jul 26, 2025

Automated Measurement of Cryptococcal Species Polysaccharide Capsule and Cell Body
Published on: January 11, 2018
Coregulation of extracellular vesicle production and fluconazole susceptibility in Cryptococcus neoformans
Juliana Rizzo1,2, Adèle Trottier1, Frédérique Moyrand1
1Institut Pasteur, Université Paris Cité, Unité Biologie des ARN des Pathogènes Fongiques , Paris, France.
Abstract:
Resistance to fluconazole (FLC), the most widely used antifungal drug, is typically achieved by altering the azole drug target and/or drug efflux pumps. Recent reports have suggested a link between vesicular trafficking and antifungal resistance. Here, we identified novel Cryptococcus neoformans regulators of extracellular vesicle (EV) biogenesis that impact FLC resistance. In particular, the transcription factor Hap2 does not affect the expression of the drug target or efflux pumps, yet it impacts the cellular sterol profile. Subinhibitory FLC concentrations also downregulate EV production. Moreover, in vitro spontaneous FLC-resistant colonies showed altered EV production, and the acquisition of FLC resistance was associated with decreased EV production in clinical isolates. Finally, the reversion of FLC resistance was associated with increased EV production. These data suggest a model in which fungal cells can regulate EV production in place of regulating the drug target gene expression as a first line of defense against antifungal assault in this fungal pathogen. IMPORTANCE Extracellular vesicles (EVs) are membrane-enveloped particles that are released by cells into the extracellular space. Fungal EVs can mediate community interactions and biofilm formation, but their functions remain poorly understood. Here, we report the identification of the first regulators of EV production in the major fungal pathogen Cryptococcus neoformans. Surprisingly, we uncover a novel role of EVs in modulating antifungal drug resistance. Disruption of EV production was associated with altered lipid composition and changes in fluconazole susceptibility. Spontaneous azole-resistant mutants were deficient in EV production, while loss of resistance restored initial EV production levels. These findings were recapitulated in C. neoformans clinical isolates, indicating that azole resistance and EV production are coregulated in diverse strains. Our study reveals a new mechanism of drug resistance in which cells adapt to azole stress by modulating EV production.
Insights
Cryptococcus neoformans regulates antifungal resistance by controlling extracellular vesicle (EV) production, not drug targets. Decreased EV production correlates with fluconazole resistance, suggesting EVs are a key defense mechanism.
Area of Science:
- Mycology
- Cell Biology
- Antimicrobial Resistance
Background:
- Fluconazole (FLC) resistance in fungi often involves drug target modification or efflux pump upregulation.
- Emerging evidence suggests a connection between vesicular trafficking and antifungal drug resistance.
- Extracellular vesicles (EVs) are implicated in fungal community interactions but their role in drug resistance is unclear.
Purpose of the Study:
- To identify regulators of extracellular vesicle (EV) biogenesis in *Cryptococcus neoformans* that influence fluconazole (FLC) resistance.
- To investigate the relationship between EV production and FLC resistance mechanisms.
- To explore the potential of EV modulation as a novel antifungal resistance strategy.
Main Methods:
- Identification of novel regulators of EV biogenesis in *C. neoformans*.
- Analysis of the impact of transcription factor Hap2 on cellular sterol profile and FLC resistance.
- Assessment of EV production under subinhibitory FLC concentrations and in FLC-resistant mutants and clinical isolates.
- Evaluation of EV production changes upon reversion of FLC resistance.
Main Results:
- Novel regulators of EV biogenesis impacting FLC resistance in *C. neoformans* were identified.
- The transcription factor Hap2 influences cellular sterol profile but not drug target or efflux pump expression.
- Subinhibitory FLC concentrations, spontaneous resistance acquisition, and clinical FLC resistance were associated with decreased EV production.
- Reversion of FLC resistance correlated with increased EV production.
Conclusions:
- Fungal cells may utilize EV production modulation as a primary defense against antifungal assault, independent of drug target regulation.
- EV production and azole resistance are coregulated in *C. neoformans*, as observed in diverse strains and clinical isolates.
- Modulation of EV production represents a novel mechanism of antifungal drug resistance in this pathogen.
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