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肠道机械感觉的神经信号在摄食和消化过程中的作用。

Neural signalling of gut mechanosensation in ingestive and digestive processes.

机构信息

Department of Chemistry, Institute of Molecular Biology and Genetics, Seoul National University, Seoul, South Korea.

出版信息

Nat Rev Neurosci. 2022 Mar;23(3):135-156. doi: 10.1038/s41583-021-00544-7. Epub 2022 Jan 4.


DOI:10.1038/s41583-021-00544-7
PMID:34983992
Abstract

Eating and drinking generate sequential mechanosensory signals along the digestive tract. These signals are communicated to the brain for the timely initiation and regulation of diverse ingestive and digestive processes - ranging from appetite control and tactile perception to gut motility, digestive fluid secretion and defecation - that are vital for the proper intake, breakdown and absorption of nutrients and water. Gut mechanosensation has been investigated for over a century as a common pillar of energy, fluid and gastrointestinal homeostasis, and recent discoveries of specific mechanoreceptors, contributing ion channels and the well-defined circuits underlying gut mechanosensation signalling and function have further expanded our understanding of ingestive and digestive processes at the molecular and cellular levels. In this Review, we discuss our current understanding of the generation of mechanosensory signals from the digestive periphery, the neural afferent pathways that relay these signals to the brain and the neural circuit mechanisms that control ingestive and digestive processes, focusing on the four major digestive tract parts: the oral and pharyngeal cavities, oesophagus, stomach and intestines. We also discuss the clinical implications of gut mechanosensation in ingestive and digestive disorders.

摘要

进食和饮水会在消化道中产生一系列机械感觉信号。这些信号被传递到大脑,以适时启动和调节各种摄食和消化过程——从食欲控制和触觉感知到肠道蠕动、消化液分泌和排便——这些过程对于营养物质和水的适当摄入、分解和吸收至关重要。一个多世纪以来,人们一直在研究肠道的机械感觉,将其作为能量、液体和胃肠道稳态的共同基础。最近发现了特定的机械感受器、参与的离子通道以及明确的肠道机械感觉信号和功能的下游神经回路,这进一步扩展了我们对分子和细胞水平上摄食和消化过程的理解。在这篇综述中,我们讨论了我们目前对来自消化道外围的机械感觉信号的产生、将这些信号传递到大脑的神经传入通路以及控制摄食和消化过程的神经回路机制的理解,重点讨论了消化道的四个主要部分:口腔和咽腔、食管、胃和肠。我们还讨论了肠道机械感觉在摄食和消化障碍中的临床意义。

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Neural signalling of gut mechanosensation in ingestive and digestive processes.

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本文引用的文献

[1]
Highly selective brain-to-gut communication via genetically defined vagus neurons.

Neuron. 2021-7-7

[2]
Gut-brain communication by distinct sensory neurons differently controls feeding and glucose metabolism.

Cell Metab. 2021-7-6

[3]
Periphery signals generated by Piezo-mediated stomach stretch and Neuromedin-mediated glucose load regulate the Drosophila brain nutrient sensor.

Neuron. 2021-6-16

[4]
Somatosensory innervation of healthy human oral tissues.

J Comp Neurol. 2021-8-1

[5]
A genetic map of the mouse dorsal vagal complex and its role in obesity.

Nat Metab. 2021-4

[6]
Extended amygdala-parabrachial circuits alter threat assessment and regulate feeding.

Sci Adv. 2021-2-26

[7]
Control of feeding by Piezo-mediated gut mechanosensation in .

Elife. 2021-2-18

[8]
Central and peripheral GLP-1 systems independently suppress eating.

Nat Metab. 2021-2

[9]
Hypothalamic detection of macronutrients via multiple gut-brain pathways.

Cell Metab. 2021-3-2

[10]
Organ-specific, multimodal, wireless optoelectronics for high-throughput phenotyping of peripheral neural pathways.

Nat Commun. 2021-1-8

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