肠神经系统
肌间神经丛
运动性
炎症
下调和上调
医学
免疫学
单核细胞
中枢神经系统
炎症性肠病
缺氧(环境)
神经科学
神经系统
病理
肠动力
四氯化碳
趋化性
肠粘膜
生物
卡哈尔间质细胞
发病机制
神经学
自主神经系统
小胶质细胞
作者
Sravya Kurapati,Changsik Shin,Krisztina Szabo,Yu Liu,Azree Zaffran Ashraf,Balázs Koscsó,Chinmayee Dash,Katherine L. Kruckow,L Guerrero Navarro,Amanda M. Clark,Monalee Saha,Sushma Nagaraj,Wenhui Wang,Jun Zhu,Kevin Brown,Travis Thomson,Natalia Shulzhenko,Andrey Morgun,Christina E. Baer,Shanthi Srinivasan
摘要
Proper organization of the enteric nervous system (ENS) is critical for normal gastrointestinal (GI) physiology. Inflammatory bowel disease (IBD) disrupts key GI functions, including bowel motility. However, in many IBD patients, motility disorders persist even during remission, suggesting an irreversible ENS defect secondary to IBD. Here, we show that postinflammatory GI motility dysfunction arises from structural remodeling of the ENS, driven by a combination of neuronal loss and neurogenesis. During mucosal inflammation, enteric neurons upregulate CCL2 expression, facilitating the recruitment of monocytes into the myenteric plexus within the intestinal muscle. Monocyte-derived macrophages infiltrate the myenteric ganglia, contributing to excessive ENS remodeling and postinflammatory motility dysfunction. This neuroimmune axis is counterbalanced by a hypoxia-induced stress response in enteric neurons mediated by HIF1α. Enhancing the neuron-intrinsic hypoxia pathway limits ENS remodeling and preserves motility. In summary, this study presents a mechanistic model of postinflammatory GI motility dysfunction and proposes a therapeutic strategy to maintain ENS integrity and function during inflammation.
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