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Updated: May 4, 2026

Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
Cellular iron homeostasis mediated by the Mrs4-Ccc1-Smf3 pathway is essential for mitochondrial function,
Abstract:
Iron bioavailability is crucial for mitochondrial metabolism and biosynthesis. Dysregulation of cellular iron homeostasis affects multiple aspects of mitochondrial physiology and cellular processes. However, the intracellular iron trafficking pathway in Candida albicans remains unclear. In this study, we characterized the Mrs4-Ccc1-Smf3 pathway, and demonstrated its important role in maintaining cellular iron levels. Double deletion of vacuolar iron exporter SMF3 and mitochondrial iron transporter MRS4 further elevated cellular iron levels in comparison with the single MRS4 deletion. However, deletion of vacuolar iron importer CCC1 in the mrs4delta/delta mutant restored cellular iron homeostasis to normal wild-type levels, and also normalized most of the defective phenotypes in response to various environmental stresses. Our results also suggested that both Mrs4 and Cccl contributed to the maintenance of mitochondrial function. The mrs4delta/delta and mrs4delta/deltasmf3delta/delta mutants exhibited an obvious decrease in aconitase activities and mitochondrial membrane potential, whereas deletion of CCC1 in the mrs4delta/delta mutant effectively rescued these defects. Furthermore, we also found that the Mrs4-Ccc1-Smf3 pathway was indispensable for cell-wall stability, antifungal drug tolerance, filamentous growth and virulence, supporting the novel viewpoint that mitochondria might be the promising target for better antifungal therapies. Interestingly, the addition of exogenous iron failed to rescue the defects on non-fermentable carbon sources or hyphae-inducing medium, indicating that the defects in mitochondrial respiration and filamentous development might result from the disturbance of cellular iron homeostasis rather than environmental iron deprivation. Taken together, our results propose the Mrs4-Ccc1-Smf3 pathway as a potentially attractive target for antifungal drug development.
Insights
The Mrs4-Ccc1-Smf3 pathway is vital for iron homeostasis and mitochondrial function in Candida albicans. Disrupting this pathway impacts cell integrity, drug tolerance, and virulence, suggesting it as a target for antifungal therapies.
Area of Science:
- * Cellular and Molecular Biology
- * Mycology
- * Medical Biochemistry
Background:
- * Iron is essential for mitochondrial metabolism and biosynthesis, with its dysregulation impacting cellular processes.
- * Intracellular iron trafficking pathways in Candida albicans are not fully understood.
- * Maintaining cellular iron homeostasis is critical for fungal physiology and virulence.
Purpose of the Study:
- * To characterize the Mrs4-Ccc1-Smf3 pathway involved in iron homeostasis in Candida albicans.
- * To investigate the role of this pathway in mitochondrial function, stress response, and virulence.
- * To evaluate the Mrs4-Ccc1-Smf3 pathway as a potential target for antifungal drug development.
Main Methods:
- * Genetic manipulation of Candida albicans, including single and double gene deletions (MRS4, CCC1, SMF3).
- * Assessment of cellular iron levels and iron homeostasis.
- * Measurement of mitochondrial function (aconitase activity, membrane potential) and phenotypic analysis under various stress conditions.
Main Results:
- * The Mrs4-Ccc1-Smf3 pathway plays a crucial role in maintaining cellular iron homeostasis.
- * Deletion of MRS4 and SMF3 led to increased cellular iron, while CCC1 deletion in the mrs4Δ/Δ mutant restored homeostasis.
- * This pathway is essential for mitochondrial function, cell-wall stability, antifungal drug tolerance, filamentous growth, and virulence.
Conclusions:
- * The Mrs4-Ccc1-Smf3 pathway is indispensable for iron homeostasis and mitochondrial function in Candida albicans.
- * Mitochondrial iron dysregulation affects multiple cellular processes, including virulence.
- * The Mrs4-Ccc1-Smf3 pathway represents a promising target for novel antifungal therapies.
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