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March 27, 2026Nature6 citationsOpen Access

Parasites trigger epithelial cell crosstalk to drive gut–brain signalling

KTKouki K TouharaJXJinhao XuJCJoel Castro

Key Points

  • This research investigates how parasitic infections trigger communication between immune and sensory epithelial cells in the gut.
  • Examined cholinergic tuft cells and serotonergic enterochromaffin cells in the gut epithelium.
  • Assessed mechanisms of acetylcholine release in response to parasites.
  • Analyzed the impact of paracrine signaling on gut–brain communication.
  • Tuft cells release acetylcholine via two distinct mechanisms in response to parasite metabolites.
  • Only sustained acetylcholine release significantly increases serotonin levels in enterochromaffin cells.
  • This signaling promotes engagement of vagal afferent neurons to inhibit food intake.

Abstract

Abstract Parasitic infections modulate both immune and sensory responses, but how these systems collaborate to elicit protective behaviours remains incompletely understood. The gut epithelium contains specialized sensory cells that detect pathogens and irritants. These include cholinergic tuft cells, which sense parasites and initiate type 2 immune responses 1–3 , as well as serotonergic enterochromaffin (EC) cells, which detect irritants and communicate with afferent nerve fibres to transmit nociceptive signals 4–6 . Here we show that paracrine signalling between these cells constitutes a mechanism for neuro–immune interaction and gut–brain communication. We find that tuft cells use two distinct mechanisms of acetylcholine (ACh) release despite lacking synaptic vesicles and excitable membranes. These include acute release in response to parasite-derived metabolites, followed by constitutive ‘leak-like’ release, which occurs with type 2 inflammation. Although both mechanisms can activate muscarinic receptors on crypt-residing EC cells, only the sustained mode of ACh release elicits levels of serotonin sufficient to stimulate vagal afferent neurons that suppress food intake. This two-phase paracrine signalling mechanism explains how parasitic infection progresses from an initial asymptomatic phase to symptomatic established disease, in which type 2 immune and sensory signalling pathways within the gut–brain axis collaborate to evoke protective behaviours.

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Cite This Study

Touhara et al. (2026) studied this question.

synapsesocial.com/papers/69c61fd715a0a509bde1841bhttps://doi.org/10.1038/s41586-026-10281-5
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