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article · PLoS Pathogens

Trichinella spiralis -induced immunomodulation signatures on gut microbiota and metabolic pathways in mice

202415 citationsOpen accessKafr el-Sheikh University

In plain language

This study investigated the impact of *Trichinella spiralis* infection on the gut microbiota and metabolic pathways in mice over a 60-day period. Researchers compared infected mice with uninfected controls, analysing fecal and serum samples to identify changes in bacterial communities and metabolites. The infection led to significant alterations in gut microbiota and metabolic activity, alongside parasite-induced immune modulation. Specifically, inflammation in the duodenum was linked to oxidative metabolite profiles, including increased biosynthesis of phenylalanine, tyrosine, and tryptophan, and decreased cholesterol and bile acid metabolism. These metabolic disruptions adapted during different infection phases, eventually returning towards homeostasis. The gut microbiota shifted from *Bacteroides* dominance to an abundance of probiotic *Lactobacillus* and Treg-associated *Clostridia*. Immune responses, including Th2 and Treg pathways, and related metabolic pathways were also altered, enhancing understanding of how parasites influence the host immune system.

Key takeaways

  • *Trichinella spiralis* infection in mice significantly alters gut microbiota composition and metabolic activity.
  • Duodenal inflammation during infection is associated with specific oxidative metabolite profiles, including changes in amino acid, cholesterol, and bile acid metabolism.
  • Metabolic disruptions adapt to infection stress during different phases and then return towards homeostasis.
  • The gut microbiota shifts from *Bacteroides* abundance to probiotic *Lactobacillus* and Treg-associated *Clostridia* during the infection.
  • The infection modifies Th2 immune responses, lamina propria Tregs, and related immune hyporesponsiveness metabolic pathways.

Why it matters

Understanding how parasitic infections like *Trichinella spiralis* influence the gut microbiome and host metabolism is crucial. This research sheds light on the complex interplay between parasites, gut bacteria, and the immune system, which could inform future strategies for managing parasitic diseases and understanding immune regulation.

Commercialisation angle

The abstract describes fundamental research aimed at enhancing the understanding of host-parasite interactions, gut microbiota, and metabolic profiles during *Trichinella* infection. It does not indicate any direct application pathway, specific user group, or readiness level for commercialisation.

AI-generated from the published abstract. Always read the original work before citing.

Abstract

The hygiene hypothesis proposes that decreased exposure to infectious agents in developed countries may contribute to the development of allergic and autoimmune diseases. Trichinella spiralis, a parasitic roundworm, causes trichinellosis, also known as trichinosis, in humans. T. spiralis had many hosts, and almost any mammal could become infected. Adult worms lived in the small intestine, while the larvae lived in muscle cells of the same mammal. T. spiralis was a significant public health threat because it could cause severe illness and even death in humans who eat undercooked or raw meat containing the parasite. The complex interactions between gastrointestinal helminths, gut microbiota, and the host immune system present a challenge for researchers. Two groups of mice were infected with T. spiralis vs uninfected control, and the experiment was conducted over 60 days. The 16S rRNA gene sequences and untargeted LC/MS-based metabolomics of fecal and serum samples, respectively, from different stages of development of the Trichinella spiralis-mouse model, were examined in this study. Gut microbiota alterations and metabolic activity accompanied by parasite-induced immunomodulation were detected. The inflammation parameters of the duodenum (villus/crypt ratio, goblet cell number and size, and histological score) were involved in active inflammation and oxidative metabolite profiles. These profiles included increased biosynthesis of phenylalanine, tyrosine, and tryptophan while decreasing cholesterol metabolism and primary and secondary bile acid biosynthesis. These disrupted metabolisms adapted to infection stress during the enteral and parenteral phases and then return to homeostasis during the encapsulated phase. There was a shift from an abundance of Bacteroides in the parenteral phase to an abundance of probiotic Lactobacillus and Treg-associated-Clostridia in the encapsulated phase. Th2 immune response (IL-4/IL-5/IL-13), lamina propria Treg, and immune hyporesponsiveness metabolic pathways (decreased tropane, piperidine and pyridine alkaloid biosynthesis and biosynthesis of alkaloids derived from ornithine, lysine, and nicotinic acid) were all altered. These findings enhanced our understanding of gut microbiota and metabolic profiles of Trichinella -infected mice, which could be a driving force in parasite-shaping immune system maintenance.

Research topics

  • Gut microbiota and health
  • Parasites and Host Interactions
  • Parasitic Diseases Research and Treatment

Read the original research

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DOI: 10.1371/journal.ppat.1011893

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