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Updated: Mar 18, 2026

Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
Iron-depletion promotes mitophagy to maintain mitochondrial integrity in pathogenic yeast Candida glabrata
Minoru Nagi1, Koichi Tanabe1,2, Hironobu Nakayama3
1a Department of Chemotherapy and Mycoses , National Institute of Infectious Diseases , Shinjuku-ku , Tokyo , Japan.
Abstract:
Candida glabrata, a haploid budding yeast, is the cause of severe systemic infections in immune-compromised hosts. The amount of free iron supplied to C. glabrata cells during systemic infections is severely limited by iron-chelating proteins such as transferrin. Thus, the iron-deficiency response in C. glabrata cells is thought to play important roles in their survival inside the host's body. In this study, we found that mitophagy was induced under iron-depleted conditions, and that the disruption of a gene homologous to ATG32, which is responsible for mitophagy in Saccharomyces cerevisiae, blocked mitophagy in C. glabrata. The mitophagic activity in C. glabrata cells was not detected on short-period exposure to nitrogen-starved conditions, which is a mitophagy-inducing condition used in S. cerevisiae. The mitophagy-deficient atg32Δ mutant of C. glabrata also exhibited decreased longevity under iron-deficient conditions. The mitochondrial membrane potential in Cgatg32Δ cells was significantly lower than that in wild-type cells under iron-depleted conditions. In a mouse model of disseminated infection, the Cgatg32Δ strain resulted in significantly decreased kidney and spleen fungal burdens compared with the wild-type strain. These results indicate that mitophagy in C. glabrata occurs in an iron-poor host tissue environment, and it may contribute to the longevity of cells, mitochondrial quality control, and pathogenesis.
Insights
Mitophagy, a cellular recycling process, is crucial for Candida glabrata survival during iron-limited infections. Disrupting this process impairs fungal longevity and reduces infection severity in host models.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Candida glabrata causes severe infections in immunocompromised individuals.
- Systemic infections severely limit iron availability for C. glabrata.
- Iron-deficiency response is critical for C. glabrata survival in vivo.
Purpose of the Study:
- To investigate the role of mitophagy in C. glabrata's response to iron deficiency.
- To determine the impact of mitophagy on C. glabrata's survival, mitochondrial function, and pathogenesis.
Main Methods:
- Investigated mitophagy induction under iron-depleted conditions in C. glabrata.
- Generated and analyzed an ATG32-disrupted mutant (Cgatg32Δ) lacking mitophagy.
- Assessed fungal burden in a mouse model of disseminated candidiasis.
Main Results:
- Mitophagy was induced in C. glabrata under iron-depleted conditions.
- Disruption of ATG32 blocked mitophagy and decreased fungal longevity in iron-deficient conditions.
- The Cgatg32Δ mutant showed reduced mitochondrial membrane potential and attenuated virulence in vivo.
Conclusions:
- Mitophagy occurs in C. glabrata during iron-poor host infections.
- Mitophagy contributes to C. glabrata longevity, mitochondrial quality control, and pathogenesis.
- Targeting mitophagy could be a strategy to combat C. glabrata infections.
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