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Bio-energetics Investigation of Candida albicans Using Real-time Extracellular Flux Analysis
Published on: March 19, 2019
Alternative sulphur metabolism in the fungal pathogen Candida parapsilosis
Lisa Lombardi1, Letal I Salzberg2, Eoin Ó Cinnéide3
1School of Biomolecular and Biomedical Science, Conway Institute, University College Dublin, Belfield, Dublin, Ireland. lisa.lombardi@ucd.ie.
Abstract:
Candida parapsilosis is an opportunistic fungal pathogen commonly isolated from the environment and associated with nosocomial infection outbreaks worldwide. We describe here the construction of a large collection of gene disruptions, greatly increasing the molecular tools available for probing gene function in C. parapsilosis. We use these to identify transcription factors associated with multiple metabolic pathways, and in particular to dissect the network regulating the assimilation of sulphur. We find that, unlike in other yeasts and filamentous fungi, the transcription factor Met4 is not the main regulator of methionine synthesis. In C. parapsilosis, assimilation of inorganic sulphur (sulphate) and synthesis of cysteine and methionine is regulated by Met28, a paralog of Met4, whereas Met4 regulates expression of a wide array of transporters and enzymes involved in the assimilation of organosulfur compounds. Analysis of transcription factor binding sites suggests that Met4 is recruited by the DNA-binding protein Met32, and Met28 is recruited by Cbf1. Despite having different target genes, Met4 and Met28 have partial functional overlap, possibly because Met4 can contribute to assimilation of inorganic sulphur in the absence of Met28.
Insights
This study reveals new regulators of sulfur metabolism in Candida parapsilosis. Met28 controls inorganic sulfur assimilation, while Met4 manages organosulfur compound uptake, differing from other fungi.
Area of Science:
- Medical Mycology
- Molecular Biology
- Biochemistry
Background:
- Candida parapsilosis is an opportunistic pathogen causing nosocomial infections.
- Limited molecular tools previously hindered functional studies in C. parapsilosis.
Purpose of the Study:
- To expand molecular tools for gene function analysis in C. parapsilosis.
- To identify transcription factors regulating metabolic pathways, particularly sulfur assimilation.
Main Methods:
- Construction of a large collection of gene disruptions in C. parapsilosis.
- Analysis of transcription factor binding sites.
- Comparative analysis with other fungal species.
Main Results:
- Met28, not Met4, is the primary regulator of inorganic sulfur assimilation and methionine synthesis in C. parapsilosis.
- Met4 regulates diverse transporters and enzymes for organosulfur compound assimilation.
- Met4 and Met28 exhibit partial functional overlap in sulfur assimilation.
Conclusions:
- The regulation of sulfur assimilation differs significantly in C. parapsilosis compared to other fungi.
- Met28 and Met4 play distinct yet partially overlapping roles in sulfur metabolism.
- This research provides novel insights into fungal metabolic regulation and potential therapeutic targets.
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