生物
肠内分泌细胞
肠神经系统
斑马鱼
细胞生物学
受体
肠上皮
运动性
神经科学
上皮
内分泌学
生物化学
内分泌系统
遗传学
激素
基因
作者
Lihua Ye,Munhyung Bae,Chelsi D. Cassilly,Sairam V. Jabba,Daniel W. Thorpe,Alyce M. Martin,Hsiu-Yi Lu,Jinhu Wang,John Thompson,Colin R. Lickwar,Kenneth D. Poss,Damien J. Keating,Sven‐Eric Jordt,Jon Clardy,Rodger A. Liddle,John F. Rawls
标识
DOI:10.1016/j.chom.2020.11.011
摘要
The intestinal epithelium senses nutritional and microbial stimuli using epithelial sensory enteroendocrine cells (EEC). EECs communicate nutritional information to the nervous system, but whether they also relay signals from intestinal microbes remains unknown. Using in vivo real-time measurements of EEC and nervous system activity in zebrafish, we discovered that the bacteria Edwardsiella tarda activate EECs through the receptor transient receptor potential ankyrin A1 (Trpa1) and increase intestinal motility. Microbial, pharmacological, or optogenetic activation of Trpa1+EECs directly stimulates vagal sensory ganglia and activates cholinergic enteric neurons by secreting the neurotransmitter 5-hydroxytryptamine (5-HT). A subset of indole derivatives of tryptophan catabolism produced by E. tarda and other gut microbes activates zebrafish EEC Trpa1 signaling. These catabolites also directly stimulate human and mouse Trpa1 and intestinal 5-HT secretion. These results establish a molecular pathway by which EECs regulate enteric and vagal neuronal pathways in response to microbial signals.
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