肠内分泌细胞通过胰岛素信号感知蔗糖并改变肠神经元的兴奋性。

IF 3.2 3区 生物学 Q3 MATERIALS SCIENCE, BIOMATERIALS
Jessica R Snyder, Minhal Ahmed, Sukhada Bhave, Ryo Hotta, Ryan A Koppes, Allan M Goldstein, Abigail N Koppes
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引用次数: 0

摘要

胃肠道的神经感觉回路感知肠道内微生物和营养物质的变化;然而,在体内研究这些电路受到侵入性技术和伦理问题的阻碍。本研究建立了肠内分泌细胞(EECs)和钙报告肠神经元(ENs)的体外模型,并验证了其功能信号传导。共同培养的机械和蔗糖刺激都增加了经历钙通量的神经元的百分比,表明动作电位。神经元的激活被压电或胰岛素受体阻滞剂阻断。在基线时,仅流刺激在共培养中激活51.9%的神经元,在压电阻滞剂的作用下,这一比例降至15.1%。压电阻滞剂和蔗糖刺激的EECs将神经元激活增加到43.9%,而胰岛素阻滞剂将反应降低到12.4%。由于在先前的实验中使用细胞系来模拟EEC,因此也刺激了富含EEC的原代大鼠十二指肠上皮,并发现产生可测量的胰岛素。这项工作显示了EECs产生胰岛素和ENs感知胰岛素的能力。这些结果启发了进一步研究胰腺外胰岛素产生如何影响糖尿病,胰岛素作为神经递质,以及探索额外的营养和微生物刺激对肠内分泌到神经元信号的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enteroendocrine Cells Sense Sucrose and Alter Enteric Neuron Excitability via Insulin Signaling.

Neurosensory circuits of the gastrointestinal tract sense microbial and nutrient changes in the gut; however, studying these circuits in vivo is hindered by invasive techniques and ethical concerns. Here, an in vitro model of enteroendocrine cells (EECs) and calcium reporting enteric neurons (ENs) is established and validated for functional signaling. Both mechanical and sucrose stimulation of co-cultures increased the percentage of neurons undergoing a calcium flux, indicating an action potential. Neuronal activation is blocked with either a piezo or insulin receptor blocker. At baseline, a flow only stimulus elicited 51.9% of neurons to activate in co-culture, which is decreased to 15.1% with a piezo blocker. Piezo blocked and sucrose stimulated EECs increased neuronal activation to 43.9%, and an insulin blocker reduced response to 12.4%. Since a cell line is used to model the EEC in the previous experiments, primary rat duodenal epithelium enriched for EECs are also stimulated and found to produced measurable insulin. This work shows the ability of EECs to produce insulin and for ENs to sense insulin. These results inspire further work on how insulin production outside the pancreas effects diabetes, insulin as a neurotransmitter, and exploration of additional nutritional and microbiotic stimuli on enteroendocrine-to-neuronal signaling.

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来源期刊
Advanced biology
Advanced biology Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
6.60
自引率
0.00%
发文量
130
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