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Macrophage Cholesterol Depletion and Its Effect on the Phagocytosis of Cryptococcus neoformans
Published on: December 19, 2014
Fluconazole induces ROS in Cryptococcus neoformans and contributes to DNA damage in vitro
Congyue Annie Peng1, Andrea A E Gaertner2, Sarah Ana Henriquez1
1Department of Genetics and Biochemistry, Clemson University, Clemson, South Carolina, United States of America.
Abstract:
Pathogenic basidiomycetous yeast, Cryptococcus neoformans, causes fatal meningitis in immunocompromised individuals. Fluconazole (FLC) is a fungistatic drug commonly administered to treat cryptococcosis. Unfortunately, FLC-resistant strains characterized by various degree of chromosomal instability were isolated from clinical patients. Importantly, the underlying mechanisms that lead to chromosomal instability in FLC-treated C. neoformans remain elusive. Previous studies in fungal and mammalian cells link chromosomal instability to the reactive oxygen species (ROS). This study provides the evidence that exposure of C. neoformans to FLC induces accumulation of intracellular ROS, which correlates with plasma membrane damage. FLC caused transcription changes of oxidative stress related genes encoding superoxide dismutase (SOD1), catalase (CAT3), and thioredoxin reductase (TRR1). Strikingly, FLC contributed to an increase of the DNA damage in vitro, when complexed with iron or copper in the presence of hydrogen peroxide. Strains with isogenic deletion of copper response protein metallothionein were more susceptible to FLC. Addition of ascorbic acid (AA), an anti-oxidant at 10 mM, reduced the inhibitory effects of FLC. Consistent with potential effects of FLC on DNA integrity and chromosomal segregation, FLC treatment led to elevated transcription of RAD54 and repression of cohesin-encoding gene SCC1. We propose that FLC forms complexes with metals and contributes to elevated ROS, which may lead to chromosomal instability in C. neoformans.
Insights
Fluconazole (FLC) causes DNA damage and chromosomal instability in Cryptococcus neoformans by increasing reactive oxygen species (ROS). Antioxidants like ascorbic acid mitigate these effects, suggesting new therapeutic strategies for fungal infections.
Area of Science:
- Medical Mycology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Cryptococcus neoformans causes life-threatening meningitis in immunocompromised patients.
- Fluconazole (FLC) resistance is emerging, linked to chromosomal instability.
- Mechanisms of FLC-induced chromosomal instability are poorly understood.
Purpose of the Study:
- To investigate the role of reactive oxygen species (ROS) in FLC-induced chromosomal instability in C. neoformans.
- To elucidate the molecular mechanisms underlying FLC resistance.
Main Methods:
- Exposure of C. neoformans to FLC.
- Measurement of intracellular ROS levels and plasma membrane damage.
- Analysis of gene transcription related to oxidative stress and DNA repair.
- In vitro DNA damage assays with metal complexes.
- Assessment of FLC susceptibility in metallothionein deletion strains.
- Evaluation of antioxidant effects.
Main Results:
- FLC exposure increased intracellular ROS and plasma membrane damage in C. neoformans.
- FLC altered transcription of oxidative stress genes (SOD1, CAT3, TRR1) and DNA repair genes (RAD54, SCC1).
- FLC induced DNA damage in vitro, potentiated by metal ions and hydrogen peroxide.
- Antioxidant ascorbic acid reduced FLC's inhibitory effects.
- Metallothionein deletion strains showed increased FLC susceptibility.
Conclusions:
- FLC induces ROS accumulation and DNA damage in C. neoformans, potentially via metal complexation.
- These ROS-mediated effects contribute to chromosomal instability and FLC resistance.
- Targeting ROS pathways or using antioxidants may offer new strategies against cryptococcosis.
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