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An inflammasome-driven differentiation program in intestinal stem cells protects against Salmonella infection

2026/05/12 by S. Lebon, A. Habshush Menachem, N. Davidzohn +19 · 1 voice
Biochemistry, Genetics and Molecular Biology · Immunology and Microbiology · #Cancer Research and Treatments #Immune responses and vaccinations #Immune cells in cancer

paper · doi:10.1038/s41590-026-02514-6

Abstract

Intestinal stem cells (ISCs) are essential for sustaining epithelial renewal and barrier integrity, yet their role in orchestrating defense against enteric pathogens remains unclear. Here we identify a stem cell-intrinsic immune mechanism whereby Lgr5+ ISCs detect intracellular Salmonella enterica and activate an inflammasome-dependent differentiation program. Using fluorescent-labeled S. enterica, single-cell transcriptomics, fate mapping, organoid models, and genetic perturbations, we show that invaded ISCs undergo rapid reprogramming toward antimicrobial peptide-enriched Paneth cells via apoptosis-associated Speck-like protein containing a CARD (ASC, encoded by Pycard)-mediated inflammasome signaling. This fate switch enhances epithelial antimicrobial capacity and restricts pathogen persistence in the crypt. The response is Salmonella-specific and conserved in human intestinal organoids. Moreover, the invasion-associated transcriptional signature is enriched in ISCs from patients with Crohn’s disease. Our findings reveal that ISCs act as active sensors of bacterial invasion and initiate epithelial remodeling through inflammasome signaling, highlighting stem cell plasticity as a frontline innate immune strategy. Salmonella-invaded intestinal stem cells activate an inflammasome-driven differentiation program toward antimicrobial Paneth cells, revealing a protective stem cell defense mechanism that helps restrict pathogen spread.

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