Nikolla Ester, Grandberry Ava, Jamerson Destiné, Flynn Charles Robb, Sundaresan Sinju
Department of Physiology, College of Graduate Studies, Midwestern University, Downers Grove, Illinois, USA.
Department of Biomedical Sciences, College of Graduate Studies, Midwestern University, Downers Grove, Illinois, USA.
FASEB J. 2025 May 15;39(9):e70586. doi: 10.1096/fj.202500220RR.
The role of the gut-to-brain axis in the regulation of nutrient sensing has been studied extensively for decades. Research has mainly centered on vagal afferent and efferent neurotransmission along the gastrointestinal tract, followed by the integration of luminal information in the nodose ganglia and transmission to vagal integral sites in the brain. The physiological and cellular mechanisms of nutrient sensing by enterocytes and enteroendocrine cells have been well established; however, the roles of the enteric nervous system (ENS) remain elusive. Recent advances in targeting specific neuronal subpopulations and imaging techniques unravel the plausible roles of the ENS in nutrient sensing. In this review, we highlight physiological, cellular, and molecular insights that direct toward direct and indirect roles of the ENS in luminal nutrient sensing and vagal neurotransmission along the gut-brain axis and discuss functional maladaptations observed during metabolic insults, as observed during obesity and associated comorbidities, including type 2 diabetes.
数十年来,肠道-脑轴在营养感知调节中的作用已得到广泛研究。研究主要集中在沿胃肠道的迷走神经传入和传出神经传递,随后是在结状神经节中整合腔内信息并传递至大脑中的迷走神经整合位点。肠上皮细胞和肠内分泌细胞进行营养感知的生理和细胞机制已得到充分确立;然而,肠神经系统(ENS)的作用仍不明确。针对特定神经元亚群和成像技术的最新进展揭示了ENS在营养感知中的可能作用。在这篇综述中,我们重点介绍了生理、细胞和分子方面的见解,这些见解指向ENS在沿肠-脑轴的腔内营养感知和迷走神经传递中的直接和间接作用,并讨论了在肥胖症及相关合并症(包括2型糖尿病)等代谢损伤期间观察到的功能失调。