An IL-17-DUOX2 axis controls gastrointestinal colonization by Candida albicans

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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