Notch 2 signaling contributes to intestinal eosinophil adaptations in steady state and tissue burden following oral allergen challenge

J Leukoc Biol. 2024 Jul 25;116(2):379-391. doi: 10.1093/jleuko/qiae122.

Abstract

Eosinophils not only function as inflammatory effectors in allergic diseases, but also contribute to tissue homeostasis in steady state. Emerging data are revealing tissue eosinophils to be adaptive cells, imprinted by their local tissue microenvironment and exhibiting distinct functional phenotypes that may contribute to their homeostatic vs. inflammatory capacities. However, signaling pathways that regulate eosinophil tissue adaptations remain elusive. Notch signaling is an evolutionarily conserved pathway that mediates differential cell fate programming of both pre- and postmitotic immune cells. This study investigated a role for notch receptor 2 signaling in regulating eosinophil functions and tissue phenotype in both humans and mice. Notch 2 receptors were constitutively expressed and active in human blood eosinophils. Pharmacologic neutralization of notch 2 in ex vivo stimulated human eosinophils altered their activated transcriptome and prevented their cytokine-mediated survival. Genetic ablation of eosinophil-expressed notch 2 in mice diminished steady-state intestine-specific eosinophil adaptations and impaired their tissue retention in a food allergic response. In contrast, notch 2 had no effect on eosinophil phenotype or tissue inflammation within the context of allergic airways inflammation, suggesting that notch 2-dependent regulation of eosinophil phenotype and function is specific to the gut. These data reveal notch 2 signaling as a cell-intrinsic mechanism that contributes to eosinophil survival, function, and intestine-specific adaptations. The notch 2 pathway may represent a viable strategy to reprogram eosinophil functional phenotypes in gastrointestinal eosinophil-associated diseases.

Keywords: allergic inflammation; eosinophil subsets; intestinal adaptations; notch signaling; phenotype.

MeSH terms

  • Adaptation, Physiological / immunology
  • Allergens* / immunology
  • Animals
  • Eosinophils* / immunology
  • Eosinophils* / metabolism
  • Food Hypersensitivity / immunology
  • Food Hypersensitivity / pathology
  • Humans
  • Intestines / immunology
  • Intestines / pathology
  • Mice
  • Mice, Inbred C57BL
  • Mice, Knockout
  • Receptor, Notch2* / metabolism
  • Signal Transduction*

Substances

  • Receptor, Notch2
  • Allergens