TY - JOUR
T1 - Optogenetics-integrated gut organ culture system connects enteric neurons dynamics and gut homeostasis
AU - Naim, Gitali
AU - Romano-Zadaka, Hadar
AU - Amidror, Sivan
AU - Jessula Levy, David
AU - Cohen, Adva
AU - Sochen, Carmel
AU - Gilberg, Hadar
AU - Farah, Nairouz
AU - Rudenko, Vladislav
AU - Yarden, Yasmin
AU - Feng, Mengyang
AU - Tsentsarevsky, Rotem
AU - Brodie, Ziv
AU - Reich, Yasmin
AU - Simon, Ariel
AU - Toister, Einat
AU - Shoval, Irit
AU - Armon, Leah
AU - Schiller, Maya
AU - Mandel, Yossi
AU - Biton, Moshe
AU - Yissachar, Nissan
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/11/14
Y1 - 2025/11/14
N2 - The enteric nervous system (ENS) senses microbiota-derived signals and orchestrates mucosal immunity and epithelial barrier functions. However, mechanistic dissections of intestinal neuro-immune-microbiota communications remain challenging. Here, we present an optogenetics-integrated gut organ culture system that enables real-time, whole-tissue stimulation of defined ENS lineages, and 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 enhances gene-sets associated with type-2 immunity, tachykininergic neurons modulate distinct mucosal defense programs. Intriguingly, luminal introduction of the immunomodulatory bacterium Thomasclavelia ramosa remodeled cholinergic-induced neuro-immunological transcription. These findings suggest that microbial and neuronal signals are locally integrated to fine-tune gut 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 microbes, drugs or metabolites.
AB - The enteric nervous system (ENS) senses microbiota-derived signals and orchestrates mucosal immunity and epithelial barrier functions. However, mechanistic dissections of intestinal neuro-immune-microbiota communications remain challenging. Here, we present an optogenetics-integrated gut organ culture system that enables real-time, whole-tissue stimulation of defined ENS lineages, and 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 enhances gene-sets associated with type-2 immunity, tachykininergic neurons modulate distinct mucosal defense programs. Intriguingly, luminal introduction of the immunomodulatory bacterium Thomasclavelia ramosa remodeled cholinergic-induced neuro-immunological transcription. These findings suggest that microbial and neuronal signals are locally integrated to fine-tune gut 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 microbes, drugs or metabolites.
UR - https://www.scopus.com/pages/publications/105021823249
U2 - 10.1038/s41467-025-64995-7
DO - 10.1038/s41467-025-64995-7
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C2 - 41238578
AN - SCOPUS:105021823249
SN - 2041-1723
VL - 16
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 10010
ER -