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Updated: Jun 1, 2026

Whole Genome Sequencing of Candida glabrata for Detection of Markers of Antifungal Drug Resistance
Published on: December 28, 2017
Regulatory circuitry governing fungal development, drug resistance, and disease
Rebecca S Shapiro1, Nicole Robbins, Leah E Cowen
1Department of Molecular Genetics, University of Toronto, Toronto, Ontario M5S1A8, Canada.
Abstract:
Pathogenic fungi have become a leading cause of human mortality due to the increasing frequency of fungal infections in immunocompromised populations and the limited armamentarium of clinically useful antifungal drugs. Candida albicans, Cryptococcus neoformans, and Aspergillus fumigatus are the leading causes of opportunistic fungal infections. In these diverse pathogenic fungi, complex signal transduction cascades are critical for sensing environmental changes and mediating appropriate cellular responses. For C. albicans, several environmental cues regulate a morphogenetic switch from yeast to filamentous growth, a reversible transition important for virulence. Many of the signaling cascades regulating morphogenesis are also required for cells to adapt and survive the cellular stresses imposed by antifungal drugs. Many of these signaling networks are conserved in C. neoformans and A. fumigatus, which undergo distinct morphogenetic programs during specific phases of their life cycles. Furthermore, the key mechanisms of fungal drug resistance, including alterations of the drug target, overexpression of drug efflux transporters, and alteration of cellular stress responses, are conserved between these species. This review focuses on the circuitry regulating fungal morphogenesis and drug resistance and the impact of these pathways on virulence. Although the three human-pathogenic fungi highlighted in this review are those most frequently encountered in the clinic, they represent a minute fraction of fungal diversity. Exploration of the conservation and divergence of core signal transduction pathways across C. albicans, C. neoformans, and A. fumigatus provides a foundation for the study of a broader diversity of pathogenic fungi and a platform for the development of new therapeutic strategies for fungal disease.
Insights
Pathogenic fungi cause significant human mortality due to rising infections and limited antifungal drugs. Understanding conserved signaling pathways in fungi like Candida albicans is key to developing new treatments.
Area of Science:
- Mycology
- Molecular Biology
- Pathogenesis
Background:
- Pathogenic fungi cause increasing human mortality, particularly in immunocompromised individuals.
- Limited antifungal drugs necessitate novel therapeutic strategies.
- Opportunistic fungal infections are primarily caused by Candida albicans, Cryptococcus neoformans, and Aspergillus fumigatus.
Purpose of the Study:
- To review conserved signal transduction pathways regulating fungal morphogenesis and drug resistance.
- To explore the impact of these pathways on virulence in key pathogenic fungi.
- To provide a foundation for studying diverse pathogenic fungi and developing new antifungal therapies.
Main Methods:
- Review of existing literature on fungal signal transduction, morphogenesis, and drug resistance.
- Comparative analysis of conserved pathways across Candida albicans, Cryptococcus neoformans, and Aspergillus fumigatus.
- Focus on the link between morphogenesis, drug resistance, and virulence.
Main Results:
- Complex signal transduction cascades are critical for fungal environmental sensing and cellular responses.
- Morphogenesis, like the yeast-to-filament transition in C. albicans, is regulated by signaling pathways also involved in antifungal drug resistance.
- Key mechanisms of fungal drug resistance (target alteration, efflux pumps, stress response) are conserved across species.
Conclusions:
- Conserved signaling pathways in pathogenic fungi offer therapeutic targets.
- Understanding conserved circuitry in C. albicans, C. neoformans, and A. fumigatus aids in broader fungal pathogen research.
- This knowledge is foundational for developing novel strategies against fungal diseases.
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