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SreA-mediated iron regulation in Aspergillus fumigatus
Markus Schrettl1, H Stanley Kim, Martin Eisendle
1Divisions of Molecular Biology/Biocenter, Medical University Innsbruck, Fritz-Pregl-Str.3, A-6020 Innsbruck, Austria.
Abstract:
Aspergillus fumigatus, the most common airborne fungal pathogen of humans, employs two high-affinity iron uptake systems: iron uptake mediated by the extracellular siderophore triacetylfusarinine C and reductive iron assimilation. Furthermore, A. fumigatus utilizes two intracellular siderophores, ferricrocin and hydroxyferricrocin, to store iron. Siderophore biosynthesis, which is essential for virulence, is repressed by iron. Here we show that this control is mediated by the GATA factor SreA. During iron-replete conditions, SreA deficiency partially derepressed synthesis of triacetylfusarinine C and uptake of iron resulting in increased cellular accumulation of both iron and ferricrocin. Genome-wide DNA microarray analysis identified 49 genes that are repressed by iron in an SreA-dependent manner. This gene set, termed SreA regulon, includes all known genes involved in iron acquisition, putative novel siderophore biosynthetic genes, and also genes not directly linked to iron metabolism. SreA deficiency also caused upregulation of iron-dependent and antioxidative pathways, probably due to the increased iron content and iron-mediated oxidative stress. Consistently, the sreA disruption mutant displayed increased sensitivity to iron, menadion and phleomycin but retained wild-type virulence in a mouse model. As all detrimental effects of sreA disruption are restricted to iron-replete conditions these data underscore that A. fumigatus faces iron-depleted conditions during infection.
Insights
The GATA factor SreA controls iron uptake in Aspergillus fumigatus, repressing siderophore biosynthesis when iron is abundant. SreA deficiency leads to increased iron accumulation and oxidative stress, highlighting the pathogen's adaptation to iron-limited environments during infection.
Area of Science:
- Medical Mycology
- Molecular Biology
- Biochemistry
Background:
- Aspergillus fumigatus is a major human fungal pathogen.
- Iron acquisition is crucial for fungal virulence.
- Iron homeostasis is tightly regulated in fungi.
Purpose of the Study:
- To identify the regulatory mechanism controlling siderophore biosynthesis in A. fumigatus.
- To elucidate the role of the GATA factor SreA in iron metabolism.
- To understand how A. fumigatus adapts to varying iron conditions.
Main Methods:
- Gene disruption of sreA in A. fumigatus.
- Analysis of siderophore biosynthesis and iron uptake.
- Genome-wide DNA microarray analysis to identify SreA-regulated genes.
- Phenotypic analysis of the sreA mutant.
Main Results:
- SreA mediates iron-dependent repression of siderophore biosynthesis and iron uptake.
- SreA regulates a set of 49 genes (SreA regulon) involved in iron acquisition and metabolism.
- SreA deficiency leads to increased intracellular iron, oxidative stress, and sensitivity to iron and oxidative agents under iron-replete conditions.
- The sreA mutant retained wild-type virulence in a mouse model.
Conclusions:
- SreA is a key regulator of iron homeostasis in A. fumigatus.
- The SreA regulon encompasses genes critical for iron acquisition and metabolism.
- A. fumigatus likely encounters iron-depleted conditions during host infection, necessitating efficient iron scavenging mechanisms.
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