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Sochen, C.

Publications and source records attributed to Sochen, C..

4 recordsLinked to original sources

IL-13 Induces a Tuft Cell-Intrinsic CD45 Checkpoint to Limit Intestinal Type 2 Immunity

Tuft cells initiate intestinal type 2 immunity, yet the mechanisms that restrain excessive tuft cell activation remain poorly understood. Here, we identify the receptor tyrosine phosphatase CD45 (Ptprc), previously considered a hematopoietic marker, as a regulator of intestinal tuft cell function. CD45 expression is restricted to a subset of tuft cells and is induced by helminth infection and IL-13. Epithelial-specific deletion of Ptprc activated a tuft cell inflammatory program, promoted an epithelial inflammatory state, and increased eosinophil accumulation at homeostasis. During Heligmosomoides polygyrus bakeri infection, CD45 deficiency enhanced ILC2 and Th2 responses and reduced parasite burden, demonstrating that epithelial CD45 limits type 2 immunity in vivo. Accordingly, in intestinal organoids, CD45 was dispensable for IL-13-driven tuft cell differentiation but restrained IL-13-responsive transcriptional programs. Mechanistically, CD45-deficient tuft cells exhibited altered protein abundance of STAT5 and IL17RB, implicated in tuft cell immune regulation. Together, these findings identify CD45 as a tuft cell-intrinsic regulatory checkpoint that restrains intestinal type 2 immunity through an IL-13-induced negative-feedback circuit.

immunology↗

TLR2-mediated microbial sensing by intestinal stem cells coordinates epithelial antimicrobial defense.

Intestinal regeneration and host defense require adaptation to environmental cues, but the mechanisms underlying this coordination remain unclear. We show that intestinal Lgr5 stem cells act as luminal sensors via apically localized Toll-like receptor 2 (TLR2), enabling direct detection of microbiota-derived signals. We identify apical TLR2 activation as a mechanism of luminal sensing in adult stem cells and show that it controls epithelial differentiation, antimicrobial peptide production, and crypt organization, with a particularly strong influence on Paneth cell maturation. Genetic ablation of constitutive, epithelial, or stem cell-specific TLR2 disrupts these processes, leading to impaired antimicrobial defense and altered epithelial composition. Using germ-free mice and human intestinal organoids, we demonstrate that this pathway is microbiota-dependent and evolutionarily conserved, respectively. These findings support a model in which stem cells act as active integrators of environmental information and suggest a broader principle by which barrier tissues couple microbial sensing to regeneration and host protection.

immunology↗

Persistent ECM Scarring Reprograms Intestinal Stem Cells to Drive Chronic Inflammation

Tissue regeneration is conventionally viewed as a return to homeostasis. Here, we uncover that the extracellular matrix (ECM) in the colon undergoes a lasting pathological reprogramming following inflammation, forming a remodeled niche--modECM--that persistently disrupts intestinal stem cell (ISC) identity. Using temporal multi-omics, biomechanical profiling, and spatial fate mapping in murine colitis models, we show that modECM, characterized by Collagen XVIII accumulation and immune-driven proteolysis, redirects ISCs toward a wound-associated, squamous-like epithelial state with pro-inflammatory transcriptional signatures. Ex vivo, modECM alone reprograms ISC fate by suppressing Wnt signaling and activating immune recruitment pathways. In vivo, modECM-rich zones sustain T cell infiltration and KRT14 epithelial cell emergence from Lgr5 progenitors. This aberrant epithelial program is mirrored in inflamed rectal biopsies from ulcerative colitis patients. Our findings redefine the ECM as a long-lived instructive compartment that encodes injury memory and promotes maladaptive regeneration, positioning it as a potential therapeutic target in chronic inflammatory disease.

immunology↗

Optogenetics-integrated gut organ culture system connects enteric neurons dynamics and gut homeostasis

The enteric nervous system (ENS) senses microbiota-derived signals and orchestrates mucosal immunity and epithelial barrier functions, in health and disease. However, mechanistic dissections of intestinal neuro-immune-microbiota communications remain challenging and existing research methods limit experimental controllability and throughput. Here, we present a novel optogenetics-integrated gut organ culture system that enables real-time, whole-tissue stimulation of specific ENS lineages, allowing for detailed analysis of their functional impact. We demonstrate that optogenetic activation of enteric cholinergic neurons rapidly modulates intestinal physiology. Interestingly, distinct neuronal firing patterns differentially modulate neuro-immunological gene expression and epithelial barrier integrity. Furthermore, diverse enteric neuronal lineages exert distinct regulatory roles. While cholinergic activation promotes gene-sets associated with type-2 immunity, tachykininergic enteric neurons differentially control mucosal defense programs. Remarkably, luminal introduction of the immunomodulatory bacterium C. ramosum significantly remodeled cholinergic-induced neuro-immunological transcription. These findings suggest that complex combinatorial signals delivered by gut microbes and enteric neurons are locally integrated to fine-tune intestinal immunity and barrier defense. Collectively, we provide a powerful platform for systematic discovery and mechanistic exploration of functional neuroimmune connections, and their potential modulation by drugs, microbes, or metabolites. Short abstractThe enteric nervous system senses microbiota-derived signals and orchestrates mucosal immunity and epithelial barrier functions. Mechanistic dissections of intestinal neuro-immune-microbiota communications remain challenging. We developed an optogenetics-integrated gut organ culture system for real-time neuronal stimulation and analysis. We revealed neuronal-specific activity patterns, which differentially regulate intestinal transcription and epithelial barrier integrity. Collectively, we provide a powerful platform to test neuroimmune connections and their potential modulation by drugs, microbes, or metabolites.

neuroscience↗