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Published on: January 20, 2017
A Novel Hybrid Iron Regulation Network Combines Features from Pathogenic and Nonpathogenic Yeasts
Franziska Gerwien1, Abu Safyan1, Stephanie Wisgott1
1Leibniz Institute for Natural Product Research and Infection Biology, Hans Knoell Institute, Department of Microbial Pathogenicity Mechanisms, Jena, Germany.
Abstract:
Iron is an essential micronutrient for both pathogens and their hosts, which restrict iron availability during infections in an effort to prevent microbial growth. Successful human pathogens like the yeast Candida glabrata have thus developed effective iron acquisition strategies. Their regulation has been investigated well for some pathogenic fungi and in the model organism Saccharomyces cerevisiae, which employs an evolutionarily derived system. Here, we show that C. glabrata uses a regulation network largely consisting of components of the S. cerevisiae regulon but also of elements of other pathogenic fungi. Specifically, similarly to baker's yeast, Aft1 is the main positive regulator under iron starvation conditions, while Cth2 degrades mRNAs encoding iron-requiring enzymes. However, unlike the case with S. cerevisiae, a Sef1 ortholog is required for full growth under iron limitation conditions, making C. glabrata an evolutionary intermediate to SEF1-dependent fungal pathogens. Therefore, C. glabrata has evolved an iron homeostasis system which seems to be unique within the pathogenic fungi.
Importance:
The fungus Candida glabrata represents an evolutionarily close relative of the well-studied and benign baker's yeast and model organism Saccharomyces cerevisiae On the other hand, C. glabrata is an important opportunistic human pathogen causing both superficial and systemic infections. The ability to acquire trace metals, in particular, iron, and to tightly regulate this process during infection is considered an important virulence attribute of a variety of pathogens. Importantly, S. cerevisiae uses a highly derivative regulatory system distinct from those of other fungi. Until now, the regulatory mechanism of iron homeostasis in C. glabrata has been mostly unknown. Our study revealed a hybrid iron regulation network that is unique to C. glabrata and is placed at an evolutionary midpoint between those of S. cerevisiae and related fungal pathogens. We thereby show that, in the host, even a successful human pathogen can rely largely on a strategy normally found in nonpathogenic fungi from a terrestrial environment.
Insights
Candida glabrata utilizes a unique iron regulation network, blending strategies from baker's yeast and other pathogens. This hybrid system, distinct from Saccharomyces cerevisiae, highlights its evolutionary adaptability as a human pathogen.
Area of Science:
- Mycology
- Molecular Biology
- Pathogen Biology
Background:
- Iron is essential for pathogens and hosts; pathogens must acquire iron during infection.
- Candida glabrata, an opportunistic human pathogen, is evolutionarily close to Saccharomyces cerevisiae.
- S. cerevisiae has a unique iron regulation system, while C. glabrata's has been largely unknown.
Purpose of the Study:
- To elucidate the iron homeostasis regulatory network in Candida glabrata.
- To compare C. glabrata's iron regulation to that of Saccharomyces cerevisiae and other fungal pathogens.
- To understand the evolutionary positioning of C. glabrata's iron acquisition strategies.
Main Methods:
- Comparative genomics and transcriptomics analysis.
- Identification and characterization of key regulatory proteins (e.g., Aft1, Cth2, Sef1 ortholog).
- Functional assays under iron-limiting conditions.
Main Results:
- C. glabrata employs a hybrid iron regulation network, incorporating elements from S. cerevisiae and other pathogenic fungi.
- Aft1 acts as the primary positive regulator during iron starvation, and Cth2 degrades iron-related mRNAs, similar to S. cerevisiae.
- A Sef1 ortholog is crucial for C. glabrata growth under iron limitation, positioning it as an evolutionary intermediate.
Conclusions:
- Candida glabrata possesses a unique iron homeostasis system, distinct from its close relative S. cerevisiae.
- This hybrid regulatory network represents an evolutionary midpoint between nonpathogenic and pathogenic fungi.
- C. glabrata's adaptable iron acquisition strategy is key to its success as a human pathogen.
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