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Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
With age comes resilience: how mitochondrial modulation drives age-associated fluconazole tolerance in Cryptococcus
Kyungyoon Yoo1, Somanon Bhattacharya2, Natalia Kronbauer Oliveira1
1Department of Microbiology and Immunology, Renaissance School of Medicine, Stony Brook University, Stony Brook, New York, USA.
Abstract:
Cryptococcus neoformans (Cn) is an opportunistic fungal microorganism that causes life-threatening meningoencephalitis. During the infection, the microbial population is heterogeneously composed of cells with varying generational ages, with older cells accumulating during chronic infections. This is attributed to their enhanced resistance to phagocytic killing and tolerance of antifungals like fluconazole (FLC). In this study, we investigated the role of ergosterol synthesis, ATP-binding cassette (ABC) transporters, and mitochondrial metabolism in the regulation of age-dependent FLC tolerance. We find that old Cn cells increase the production of ergosterol and exhibit upregulation of ABC transporters. Old cells also show transcriptional and phenotypic characteristics consistent with increased metabolic activity, leading to increased ATP production. This is accompanied by increased production of reactive oxygen species, which results in mitochondrial fragmentation. This study demonstrates that the metabolic changes occurring in the mitochondria of old cells drive the increase in ergosterol synthesis and the upregulation of ABC transporters, leading to FLC tolerance.
Importance:
Infections caused by Cryptococcus neoformans cause more than 180,000 deaths annually. Estimated 1-year mortality for patients receiving care ranges from 20% in developed countries to 70% in developing countries, suggesting that current treatments are inadequate. Some fungal cells can persist and replicate despite the usage of current antifungal regimens, leading to death or treatment failure. Aging in fungi is associated with enhanced tolerance against antifungals and resistance to killing by host cells. This study shows that age-dependent increase in mitochondrial reactive oxygen species drive changes in the regulation of membrane transporters and ergosterol synthesis, ultimately leading to the heightened tolerance against fluconazole in old C. neoformans cells. Understanding the underlying molecular mechanisms of this age-associated antifungal tolerance will enable more targeted antifungal therapies for cryptococcal infections.
Insights
Older Cryptococcus neoformans cells develop fluconazole tolerance through increased ergosterol and ABC transporters, driven by mitochondrial metabolic changes and reactive oxygen species.
Area of Science:
- Mycology
- Cell Biology
- Infectious Diseases
Background:
- Cryptococcus neoformans (Cn) causes life-threatening meningoencephalitis, with older cells exhibiting enhanced resistance to antifungal drugs like fluconazole (FLC).
- Understanding the mechanisms of age-dependent antifungal tolerance is crucial for developing effective treatments against cryptococcal infections, which have high mortality rates.
Purpose of the Study:
- To investigate the roles of ergosterol synthesis, ATP-binding cassette (ABC) transporters, and mitochondrial metabolism in age-dependent FLC tolerance in Cn.
- To elucidate the molecular pathways linking mitochondrial activity, metabolic changes, and antifungal resistance in aging fungal cells.
Main Methods:
- Comparative analysis of ergosterol production, ABC transporter expression, and mitochondrial metabolic activity between young and old Cn cells.
- Assessment of reactive oxygen species (ROS) levels and mitochondrial morphology in relation to FLC tolerance.
- Transcriptional and phenotypic characterization of metabolic changes in aging Cn cells.
Main Results:
- Old Cn cells showed increased ergosterol production and upregulated ABC transporters compared to young cells.
- Aging Cn cells exhibited enhanced metabolic activity, increased ATP production, and elevated ROS levels, leading to mitochondrial fragmentation.
- These metabolic shifts in aged cells were directly linked to increased ergosterol synthesis and ABC transporter activity, conferring FLC tolerance.
Conclusions:
- Mitochondrial metabolic alterations, including increased ROS production, drive age-dependent increases in ergosterol synthesis and ABC transporter expression in Cn.
- These coordinated changes in metabolic pathways and cellular components lead to heightened fluconazole tolerance in older fungal cells.
- Targeting these age-associated mechanisms offers a potential strategy for developing more effective antifungal therapies for cryptococcal infections.
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