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Th17 Inflammation Model of Oropharyngeal Candidiasis in Immunodeficient Mice
Published on: February 18, 2015
An IL-17-DUOX2 axis controls gastrointestinal colonization by Candida albicans
Abstract:
Candida albicans is a ubiquitous fungus in the human gut microbiome as well as a prevalent cause of opportunistic mucosal and systemic disease. There is currently little understanding, however, as to how crosstalk between C. albicans and the host regulates colonization of this key niche. Here, we performed expression profiling on ileal and colonic tissues in germ-free mice colonized with C. albicans to define the global response to this fungus. We reveal that Duox2 and Duoxa2 , encoding dual NADPH oxidase activity, are upregulated in both the ileum and colon, and that induction requires the C. albicans yeast-hyphal transition and the hyphal-specific toxin candidalysin. Hosts lacking the IL-17 receptor failed to upregulate Duox2/Duoxa2 in response to C. albicans , while addition of IL-17A to colonoids induced these genes together with the concomitant production of hydrogen peroxide. To directly define the role of Duox2/Duoxa2 in fungal colonization, antibiotic-treated mice lacking intestinal DUOX2 activity were evaluated for C. albicans colonization and host responses. Surprisingly, loss of DUOX2 function reduced fungal colonization at extended time points (>17 days colonization) and increased the proportion of hyphal cells in the gut. IL-17A levels were also elevated in C. albicans -colonized mice lacking functional DUOX2 highlighting cross-regulation between this cytokine and DUOX2. Together, these experiments reveal novel links between fungal cells, candidalysin toxin and the host IL-17-DUOX2 axis, and that a complex interplay between these factors regulates C. albicans filamentation and colonization in the gut.
Insights
Host responses to Candida albicans in the gut involve Duox2 and IL-17 signaling. This study reveals Duox2 activity is surprisingly reduced by fungal colonization, impacting host-fungus interactions.
Area of Science:
- Microbiology
- Immunology
- Gastroenterology
Background:
- Candida albicans is a common gut fungus causing opportunistic infections.
- Host-pathogen interactions regulating C. albicans gut colonization are poorly understood.
Purpose of the Study:
- To investigate host gene expression in response to C. albicans colonization in the mouse gut.
- To define the role of Duox2/Duoxa2 and IL-17 signaling in C. albicans gut colonization.
Main Methods:
- Expression profiling of ileal and colonic tissues in germ-free mice colonized with C. albicans.
- Utilizing mice lacking IL-17 receptor and DUOX2 activity to assess host response and fungal colonization.
- Employing colonoid models to study IL-17A induced gene expression.
Main Results:
- Duox2 and Duoxa2 were upregulated by C. albicans, requiring yeast-hyphal transition and candidalysin.
- IL-17 receptor signaling was necessary for Duox2/Duoxa2 induction.
- Loss of DUOX2 function reduced C. albicans colonization at later time points and increased hyphal forms.
- IL-17A levels were elevated in DUOX2-deficient mice, indicating cross-regulation.
Conclusions:
- A novel host IL-17-DUOX2 axis is involved in regulating C. albicans gut colonization.
- C. albicans filamentation and colonization are modulated by the interplay between fungal factors and host DUOX2 activity.
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