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完整果蝇迷走神经连接组中 5-羟色胺能对吞咽的调制作用。

Serotonergic modulation of swallowing in a complete fly vagus nerve connectome.

机构信息

Department of Molecular Brain Physiology and Behavior, LIMES Institute, University of Bonn, Carl-Troll-Straße, Bonn 53115, Germany.

Department of Zoology, University of Cambridge, Downing Street, Cambridge CB2 TN1, UK; MRC Laboratory of Molecular Biology, Cambridge Biomedical Campus, Francis Crick Avenue, Trumpington, Cambridge CB2 0QH, UK.

出版信息

Curr Biol. 2024 Oct 7;34(19):4495-4512.e6. doi: 10.1016/j.cub.2024.08.025. Epub 2024 Sep 12.

Abstract

How the body interacts with the brain to perform vital life functions, such as feeding, is a fundamental issue in physiology and neuroscience. Here, we use a whole-animal scanning transmission electron microscopy volume of Drosophila to map the neuronal circuits that connect the entire enteric nervous system to the brain via the insect vagus nerve at synaptic resolution. We identify a gut-brain feedback loop in which Piezo-expressing mechanosensory neurons in the esophagus convey food passage information to a cluster of six serotonergic neurons in the brain. Together with information on food value, these central serotonergic neurons enhance the activity of serotonin receptor 7-expressing motor neurons that drive swallowing. This elemental circuit architecture includes an axo-axonic synaptic connection from the glutamatergic motor neurons innervating the esophageal muscles onto the mechanosensory neurons that signal to the serotonergic neurons. Our analysis elucidates a neuromodulatory sensory-motor system in which ongoing motor activity is strengthened through serotonin upon completion of a biologically meaningful action, and it may represent an ancient form of motor learning.

摘要

身体如何与大脑相互作用以执行重要的生命功能,如进食,是生理学和神经科学的一个基本问题。在这里,我们使用果蝇的整个动物扫描透射电子显微镜体积来绘制神经元回路,这些神经元回路通过昆虫迷走神经以突触分辨率连接整个肠神经系统和大脑。我们确定了一个肠道-大脑反馈回路,其中食管中表达 Piezo 的机械感觉神经元将食物通过信息传递到大脑中六个血清素能神经元的簇中。这些中枢血清素能神经元与食物价值信息一起,增强了驱动吞咽的表达血清素受体 7 的运动神经元的活性。这个基本的电路结构包括从支配食管肌肉的谷氨酸能运动神经元到向信号传递给血清素能神经元的机械感觉神经元的轴突-轴突突触连接。我们的分析阐明了一种神经调制感觉-运动系统,其中持续的运动活动在完成有生物学意义的动作后通过血清素得到加强,它可能代表一种古老的运动学习形式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8df/7616834/2135e7a89971/EMS200071-f008.jpg

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