Related Experiment Video
Updated: May 2, 2026

Flow Cytometry-based Purification of S. cerevisiae Zygotes
Published on: September 21, 2012
A tetraploid intermediate precedes aneuploid formation in yeasts exposed to fluconazole
Benjamin D Harrison1, Jordan Hashemi2, Maayan Bibi3
1Department of Genetics, Cell, and Developmental Biology, University of Minnesota-Twin Cities, Minneapolis, Minnesota, United States of America.
Abstract:
Candida albicans, the most prevalent human fungal pathogen, is generally diploid. However, 50% of isolates that are resistant to fluconazole (FLC), the most widely used antifungal, are aneuploid and some aneuploidies can confer FLC resistance. To ask if FLC exposure causes or only selects for aneuploidy, we analyzed diploid strains during exposure to FLC using flow cytometry and epifluorescence microscopy. FLC exposure caused a consistent deviation from normal cell cycle regulation: nuclear and spindle cycles initiated prior to bud emergence, leading to "trimeras," three connected cells composed of a mother, daughter, and granddaughter bud. Initially binucleate, trimeras underwent coordinated nuclear division yielding four daughter nuclei, two of which underwent mitotic collapse to form a tetraploid cell with extra spindle components. In subsequent cell cycles, the abnormal number of spindles resulted in unequal DNA segregation and viable aneuploid progeny. The process of aneuploid formation in C. albicans is highly reminiscent of early stages in human tumorigenesis in that aneuploidy arises through a tetraploid intermediate and subsequent unequal DNA segregation driven by multiple spindles coupled with a subsequent selective advantage conferred by at least some aneuploidies during growth under stress. Finally, trimera formation was detected in response to other azole antifungals, in related Candida species, and in an in vivo model for Candida infection, suggesting that aneuploids arise due to azole treatment of several pathogenic yeasts and that this can occur during the infection process.
Insights
Fluconazole (FLC) exposure causes aneuploidy in Candida albicans by disrupting cell division, leading to tetraploid intermediates and aneuploid progeny. This mechanism is also observed in other azole antifungals and during infection.
Area of Science:
- Microbiology
- Genetics
- Cell Biology
Background:
- Candida albicans is a common human fungal pathogen, typically diploid.
- Aneuploidy is observed in 50% of fluconazole-resistant isolates and can confer resistance.
- The relationship between fluconazole exposure and aneuploidy formation is unclear.
Purpose of the Study:
- To investigate whether fluconazole exposure causes or selects for aneuploidy in Candida albicans.
- To elucidate the mechanism of aneuploidy formation under fluconazole treatment.
Main Methods:
- Analysis of diploid Candida albicans strains exposed to fluconazole.
- Utilized flow cytometry and epifluorescence microscopy.
- Observed cell cycle regulation, nuclear and spindle dynamics, and DNA segregation.
Main Results:
- Fluconazole exposure disrupted normal cell cycle regulation, forming "trimeras" (three connected cells).
- Trimeras underwent abnormal nuclear division, leading to tetraploid intermediates with extra spindle components.
- Subsequent cell cycles resulted in unequal DNA segregation and viable aneuploid progeny.
- Trimera formation and aneuploidy were observed with other azole antifungals, related Candida species, and in an in vivo infection model.
Conclusions:
- Fluconazole exposure directly induces aneuploidy in Candida albicans through a tetraploid intermediate.
- The mechanism of aneuploidy formation resembles early stages of human tumorigenesis.
- Azole treatment can induce aneuploidy in pathogenic yeasts during infection.
More Related Videos
09:06Author Spotlight: Photodynamic Therapy as a Novel Approach to Induce Petite Colonies in Drug-Resistant Candida for Antifungal Research
Published on: March 29, 2024
13:06The Green Monster Process for the Generation of Yeast Strains Carrying Multiple Gene Deletions
Published on: December 15, 2012
Related Concept Videos
Yeast Signaling
Fungal Phylum Ascomycota