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Published on: October 18, 2017
Candida albicans pathways that protect against organic peroxides and lipid peroxidation
Kara A Swenson1, Kyunghun Min2, James B Konopka1
1Department of Microbiology and Immunology, Stony Brook University, Stony Brook, New York, United States of America.
Abstract:
Human fungal pathogens must survive diverse reactive oxygen species (ROS) produced by host immune cells that can oxidize a range of cellular molecules including proteins, lipids, and DNA. Formation of lipid radicals can be especially damaging, as it leads to a chain reaction of lipid peroxidation that causes widespread damage to the plasma membrane. Most previous studies on antioxidant pathways in fungal pathogens have been conducted with hydrogen peroxide, so the pathways used to combat organic peroxides and lipid peroxidation are not well understood. The most well-known peroxidase in Candida albicans, catalase, can only act on hydrogen peroxide. We therefore characterized a family of four glutathione peroxidases (GPxs) that were predicted to play an important role in reducing organic peroxides. One of the GPxs, Gpx3 is also known to activate the Cap1 transcription factor that plays the major role in inducing antioxidant genes in response to ROS. Surprisingly, we found that the only measurable role of the GPxs is activation of Cap1 and did not find a significant role for GPxs in the direct detoxification of peroxides. Furthermore, a CAP1 deletion mutant strain was highly sensitive to organic peroxides and oxidized lipids, indicating an important role for antioxidant genes upregulated by Cap1 in protecting cells from organic peroxides. We identified GLR1 (Glutathione reductase), a gene upregulated by Cap1, as important for protecting cells from oxidized lipids, implicating glutathione utilizing enzymes in the protection against lipid peroxidation. Furthermore, an RNA-sequencing study in C. albicans showed upregulation of a diverse set of antioxidant genes and protein damage pathways in response to organic peroxides. Overall, our results identify novel mechanisms by which C. albicans responds to oxidative stress resistance which open new avenues for understanding how fungal pathogens resist ROS in the host.
Insights
Candida albicans uses glutathione peroxidases (GPxs) to activate Cap1, which then induces antioxidant genes, protecting against organic peroxides and lipid damage. This reveals new fungal oxidative stress resistance mechanisms.
Area of Science:
- Microbiology
- Biochemistry
- Molecular Biology
Background:
- Fungal pathogens face reactive oxygen species (ROS) from host immune cells.
- Lipid peroxidation, caused by lipid radicals, severely damages cell membranes.
- Existing knowledge on fungal antioxidant pathways primarily focuses on hydrogen peroxide, not organic peroxides or lipid peroxidation.
Purpose of the Study:
- To characterize the role of glutathione peroxidases (GPxs) in combating organic peroxides and lipid peroxidation in Candida albicans.
- To investigate the involvement of the Cap1 transcription factor in the fungal oxidative stress response.
- To identify specific genes and pathways crucial for resistance against oxidized lipids.
Main Methods:
- Characterization of a family of four glutathione peroxidases (GPxs).
- Analysis of a CAP1 deletion mutant strain's sensitivity to organic peroxides and oxidized lipids.
- RNA-sequencing to study gene expression changes in response to organic peroxides.
- Identification of GLR1 (Glutathione reductase) as a key gene.
Main Results:
- GPxs primarily function in activating the Cap1 transcription factor, not direct peroxide detoxification.
- A CAP1 deletion mutant exhibited high sensitivity to organic peroxides and oxidized lipids.
- The gene GLR1, upregulated by Cap1, is crucial for protection against oxidized lipids.
- RNA-sequencing revealed upregulation of diverse antioxidant genes and protein damage pathways.
Conclusions:
- Candida albicans employs a Cap1-mediated transcriptional response to combat organic peroxides and lipid peroxidation.
- Glutathione-utilizing enzymes, like GLR1, play a significant role in protecting against lipid peroxidation.
- These findings uncover novel mechanisms of oxidative stress resistance in fungal pathogens, offering new targets for therapeutic strategies.
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