Principles and clinical implications of the brain–gut–enteric microbiota axis

嗜铬细胞 肠神经系统 固有层 肠道菌群 免疫系统 肠-脑轴 生物 分泌物 免疫学 细胞生物学 神经科学 受体 上皮 内分泌学 血清素 生物化学 遗传学
作者
Sang Hoon Rhee,Charalabos Pothoulakis,Emeran A. Mayer
出处
期刊:Nature Reviews Gastroenterology & Hepatology [Nature Portfolio]
卷期号:6 (5): 306-314 被引量:1317
标识
DOI:10.1038/nrgastro.2009.35
摘要

In this article, Rhee and colleagues review the ample preclinical evidence suggesting that the commensal bacterial flora physiologically present in the gut modulates and influences bidirectional communication between the host's gut and central nervous system. The authors propose possible mechanisms by which these three-way mutual interactions may occur and may affect the host's healthy and diseased states. While bidirectional brain–gut interactions are well known mechanisms for the regulation of gut function in both healthy and diseased states, a role of the enteric flora—including both commensal and pathogenic organisms—in these interactions has only been recognized in the past few years. The brain can influence commensal organisms (enteric microbiota) indirectly, via changes in gastrointestinal motility and secretion, and intestinal permeability, or directly, via signaling molecules released into the gut lumen from cells in the lamina propria (enterochromaffin cells, neurons, immune cells). Communication from enteric microbiota to the host can occur via multiple mechanisms, including epithelial-cell, receptor-mediated signaling and, when intestinal permeability is increased, through direct stimulation of host cells in the lamina propria. Enterochromaffin cells are important bidirectional transducers that regulate communication between the gut lumen and the nervous system. Vagal, afferent innervation of enterochromaffin cells provides a direct pathway for enterochromaffin-cell signaling to neuronal circuits, which may have an important role in pain and immune-response modulation, control of background emotions and other homeostatic functions. Disruption of the bidirectional interactions between the enteric microbiota and the nervous system may be involved in the pathophysiology of acute and chronic gastrointestinal disease states, including functional and inflammatory bowel disorders.
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