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Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
Flavodoxin-Like Proteins Protect Candida albicans from Oxidative Stress and Promote Virulence
Lifang Li1, Shamoon Naseem1, Sahil Sharma1
1Department of Molecular Genetics and Microbiology, Stony Brook University, Stony Brook, New York, United States of America.
Abstract:
The fungal pathogen Candida albicans causes lethal systemic infections in humans. To better define how pathogens resist oxidative attack by the immune system, we examined a family of four Flavodoxin-Like Proteins (FLPs) in C. albicans. In agreement with previous studies showing that FLPs in bacteria and plants act as NAD(P)H quinone oxidoreductases, a C. albicans quadruple mutant lacking all four FLPs (pst1Δ, pst2Δ, pst3Δ, ycp4Δ) was more sensitive to benzoquinone. Interestingly, the quadruple mutant was also more sensitive to a variety of oxidants. Quinone reductase activity confers important antioxidant effects because resistance to oxidation was restored in the quadruple mutant by expressing either Escherichia coli wrbA or mammalian NQO1, two distinct types of quinone reductases. FLPs were detected at the plasma membrane in C. albicans, and the quadruple mutant was more sensitive to linolenic acid, a polyunsaturated fatty acid that can auto-oxidize and promote lipid peroxidation. These observations suggested that FLPs reduce ubiquinone (coenzyme Q), enabling it to serve as an antioxidant in the membrane. In support of this, a C. albicans coq3Δ mutant that fails to synthesize ubiquinone was also highly sensitive to oxidative stress. FLPs are critical for survival in the host, as the quadruple mutant was avirulent in a mouse model of systemic candidiasis under conditions where infection with wild type C. albicans was lethal. The quadruple mutant cells initially grew well in kidneys, the major site of C. albicans growth in mice, but then declined after the influx of neutrophils and by day 4 post-infection 33% of the mice cleared the infection. Thus, FLPs and ubiquinone are important new antioxidant mechanisms that are critical for fungal virulence. The potential of FLPs as novel targets for antifungal therapy is further underscored by their absence in mammalian cells.
Insights
Flavodoxin-like proteins (FLPs) in Candida albicans are crucial antioxidants that protect against immune system attacks. Deleting these proteins compromises fungal virulence and survival, making them potential antifungal drug targets.
Area of Science:
- Mycology
- Molecular Biology
- Immunology
Background:
- Candida albicans is a fungal pathogen causing life-threatening systemic infections.
- Pathogens employ antioxidant mechanisms to resist immune system oxidative attacks.
- Flavodoxin-like proteins (FLPs) in other organisms function as NAD(P)H quinone oxidoreductases.
Purpose of the Study:
- To investigate the role of four FLPs in Candida albicans antioxidant defense.
- To determine the contribution of FLPs to fungal virulence and survival during infection.
Main Methods:
- Generated a quadruple FLP knockout mutant (pst1Δ, pst2Δ, pst3Δ, ycp4Δ) in C. albicans.
- Assessed mutant sensitivity to oxidants, benzoquinone, and linolenic acid.
- Restored oxidation resistance by expressing bacterial or mammalian quinone reductases.
- Evaluated mutant virulence in a mouse model of systemic candidiasis.
Main Results:
- The quadruple FLP mutant exhibited increased sensitivity to benzoquinone and various oxidants.
- FLPs were localized to the plasma membrane and suggested to reduce ubiquinone (coenzyme Q) for antioxidant function.
- A ubiquinone-deficient mutant (coq3Δ) also showed high sensitivity to oxidative stress.
- The quadruple FLP mutant was avirulent in mice, with infections cleared by 33% of mice by day 4.
Conclusions:
- FLPs and ubiquinone are critical antioxidant mechanisms essential for C. albicans virulence.
- FLPs confer resistance to oxidative stress and are vital for fungal survival in a host environment.
- FLPs represent promising novel antifungal drug targets due to their absence in mammalian cells.
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