探讨肝-肠-脑轴对非酒精性脂肪性肝病脑功能的影响。

IF 8.9
Journal of pharmaceutical analysis Pub Date : 2025-05-01 Epub Date: 2024-08-19 DOI:10.1016/j.jpha.2024.101077
Jingting Zhang, Keyan Chen, Fu Chen
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引用次数: 0

摘要

本研究探讨了非酒精性脂肪性肝病(NAFLD)诱导的脑功能障碍的分子复杂性,重点关注肝-肠-脑轴和潜在的治疗干预措施。主要目标包括了解NAFLD中关键微生物群的变化,探索改变的代谢物,并确定影响脑功能的关键调节分子。采用的方法包括16S核糖体RNA (rRNA)测序来检查NAFLD患者和健康个体的粪便微生物群,使用LC-MS非靶向代谢组学来发现NAFLD小鼠中脱氧胆酸(DCA)水平升高,以及单细胞RNA测序(scRNA-seq)来确定小胶质细胞中的关键基因Hpgd及其下游Janus激酶2/信号换能器和转录激活器3 (JAK2/STAT3)信号通路。利用各种测定和分析方法,评估了接受和不接受粪便微生物群移植(FMT)治疗的NAFLD小鼠的行为变化和脑功能。结果显示微生物群组成存在显著差异,NAFLD患者的拟杆菌水平升高。此外,在NAFLD小鼠中观察到DCA水平升高,FMT治疗显示出改善肝功能和脑功能障碍的功效。DCA抑制Hpgd激活了小胶质细胞中JAK2/STAT3通路,导致炎症激活、线粒体自噬抑制、神经元凋亡诱导、神经元动作电位降低。本研究阐明了NAFLD中肝-肠-脑轴复杂的分子机制,并且鉴定了DCA增加和JAK2/STAT3信号对小胶质细胞的影响,突出了解决NAFLD诱导的脑功能障碍的潜在治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the impact of the liver-intestine-brain axis on brain function in non-alcoholic fatty liver disease.

This study investigates the molecular complexities of non-alcoholic fatty liver disease (NAFLD)-induced brain dysfunction, with a focus on the liver-intestine-brain axis and potential therapeutic interventions. The main objectives include understanding critical microbiota shifts in NAFLD, exploring altered metabolites, and identifying key regulatory molecules influencing brain function. The methods employed encompassed 16S ribosomal RNA (rRNA) sequencing to scrutinize stool microbiota in NAFLD patients and healthy individuals, non-targeted metabolomics using LC-MS to uncover elevated levels of deoxycholic acid (DCA) in NAFLD mice, and single-cell RNA sequencing (scRNA-seq) to pinpoint the pivotal gene Hpgd in microglial cells and its downstream Janus kinase 2/signal transducer and activator of transcription 3 (JAK2/STAT3) signaling pathway. Behavioral changes and brain function were assessed in NAFLD mice with and without Fecal microbiota transplantation (FMT) treatment, utilizing various assays and analyses. The results revealed significant differences in microbiota composition, with increased levels of Bacteroides in NAFLD patients. Additionally, elevated DCA levels were observed in NAFLD mice, and FMT treatment demonstrated efficacy in ameliorating liver function and brain dysfunction. Hpgd inhibition by DCA activated the JAK2/STAT3 pathway in microglial cells, leading to inflammatory activation, inhibition of mitochondrial autophagy, induction of neuronal apoptosis, and reduction in neuronal action potentials. This study elucidates the intricate molecular mechanisms underlying the liver-gut-brain axis in NAFLD, and the identification of increased DCA and the impact of JAK2/STAT3 signaling on microglial cells highlight potential therapeutic targets for addressing NAFLD-induced brain dysfunction.

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