依赖于食的VIP神经元-ILC3电路调节肠道屏障
Jhimmy Talbot1, Paul Hahn1, Lina Kroehling1
1Molecular Pathogenesis Program, The Kimmel Center for Biology and Medicine of the Skirball Institute, New York University School of Medicine, New York, NY, USA.
Nature
|February 13, 2020
概括
一个新发现的肠道神经免疫电路平衡营养吸收和免疫防御. 食物摄入激活神经元向免疫细胞发出信号,影响肠道屏障功能和新陈代谢.
科学领域:
- 神经免疫学
- 胃肠病学
- 代谢过程
背景情况:
- 肠道粘膜平衡营养吸收与对抗微生物的屏障功能.
- 对食物摄入的生理和免疫反应之间的协调尚未完全理解.
- 3型先天性淋巴细胞 (ILC3) 在肠道免疫和新陈代谢中起作用.
研究的目的:
- 为了阐明肠道神经信号如何与肠道免疫和代谢反应相结合.
- 研究血管活性肠 (VIP) 生产神经元和ILC3在这个过程中的作用.
- 了解调节营养吸收和免疫保护的动态神经免疫电路.
主要方法:
- 使用小鼠模型研究肠道对食物摄入的反应.
- 研究表达VIP的肠道神经元的激活以及它们与表达VIPR2的ILC3的接近.
- 评估了VIPR2对IL-22由ILC3产生的影响以及随后抗菌和脂质代谢的变化.
主要成果:
- 食物消耗激活了VIPergic神经元,这些神经元通过VIPR2向ILC3发出信号.
- VIPR2的参与抑制IL- 22的产生,减少抗菌,但增加脂质的吸收.
- 这种神经免疫电路在养过程中增强细分细丝细菌的殖民和脂质吸收.
结论:
- 肠道中的营养和生理节律调节的神经免疫循环可以动态地平衡先天免疫保护和营养吸收效率.
- 这一循环涉及IL-22介导免疫和增强的脂质吸收之间的权衡.
- 调节这种途径有可能改善病原体的耐药性和治疗代谢疾病.
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