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Cultivation of Heligmosomoides Polygyrus: An Immunomodulatory Nematode Parasite and its Secreted Products
Published on: April 6, 2015
Fermentable Dietary Fiber Promotes Helminth Infection and Exacerbates Host Inflammatory Responses
Laura J Myhill1, Sophie Stolzenbach2, Helena Mejer2
1Department of Veterinary and Animal Sciences, Faculty of Health and Medical Sciences, University of Copenhagen, Frederiksberg C DK-1870, Denmark; lauramyhill@sund.ku.dk arw@sund.ku.dk.
Abstract:
Fermentable dietary fibers promote the growth of beneficial bacteria, can enhance mucosal barrier integrity, and reduce chronic inflammation. However, effects on intestinal type 2 immune function remain unclear. In this study, we used the murine whipworm Trichuris muris to investigate the effect of the fermentable fiber inulin on host responses to infection regimes that promote distinct Th1 and Th2 responses in C57BL/6 mice. In uninfected mice, dietary inulin stimulated the growth of beneficial bacteria, such as Bifidobacterium (Actinobacteria) and Akkermansia (Verrucomicrobia). Despite this, inulin prevented worm expulsion in normally resistant mice, instead resulting in chronic infection, whereas mice fed an equivalent amount of nonfermentable fiber (cellulose) expelled worms normally. Lack of expulsion in the mice fed inulin was accompanied by a significantly Th1-skewed immune profile characterized by increased T-bet+ T cells and IFN-γ production in mesenteric lymph nodes, increased expression of Ido1 in the cecum, and a complete absence of mast cell and IgE production. Furthermore, the combination of dietary inulin and high-dose T. muris infection caused marked dysbiosis, with expansion of the Firmicutes and Proteobacteria phyla, near elimination of Bacteroidetes, and marked reductions in cecal short-chain fatty acids. Neutralization of IFN-γ during infection abrogated Ido1 expression and was sufficient to restore IgE production and worm expulsion in inulin-fed mice. Our results indicate that, whereas inulin promoted gut health in otherwise healthy mice, during T. muris infection, it exacerbated inflammatory responses and dysbiosis. Thus, the positive effects of fermentable fiber on gut inflammation appear to be context dependent, revealing a novel interaction between diet and infection.
Insights
Dietary inulin promotes beneficial gut bacteria but hinders worm expulsion in mice, causing a Th1-skewed immune response and dysbiosis during infection. These findings highlight the context-dependent effects of fermentable fibers on gut health and immunity.
Area of Science:
- Immunology
- Microbiome research
- Nutritional science
Background:
- Fermentable fibers like inulin support gut health by promoting beneficial bacteria and reducing inflammation.
- However, their impact on intestinal type 2 immune responses, particularly during parasitic infections, is not well understood.
Purpose of the Study:
- To investigate the effect of inulin on host immune responses to *Trichuris muris* infection in mice.
- To determine how inulin influences distinct Th1 and Th2 immune profiles in the context of parasitic infection.
Main Methods:
- C57BL/6 mice were fed either inulin (fermentable fiber) or cellulose (non-fermentable fiber).
- Mice were infected with *Trichuris muris* to induce Th1 or Th2 responses.
- Immune profiles, bacterial growth, and worm expulsion were analyzed.
Main Results:
- Inulin increased beneficial bacteria (*Bifidobacterium*, *Akkermansia*) in uninfected mice.
- Inulin-fed mice failed to expel *T. muris*, developing chronic infections with a Th1-skewed immune response (increased T-bet+ T cells, IFN-γ, Ido1; absent IgE, mast cells).
- Inulin exacerbated dysbiosis and reduced short-chain fatty acids during infection; IFN-γ neutralization restored worm expulsion and IgE production.
Conclusions:
- Dietary inulin can promote gut health in healthy individuals but may impair host defense against parasitic infections like *T. muris*.
- Inulin's effects on gut inflammation are context-dependent, revealing a complex interplay between diet, the microbiome, and host immunity during infection.
- These findings underscore the need to consider the specific host-pathogen context when evaluating the benefits of fermentable fibers.
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