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常春藤皂苷元通过PPARα/TFEB介导的自噬改善阿尔茨海默病。

Hederagenin improves Alzheimer's disease through PPARα/TFEB-mediated autophagy.

作者信息

Xie Zhi-Shen, Zhao Jian-Ping, Wu Li-Min, Chu Shuang, Cui Zheng-Hao, Sun Yi-Ran, Wang Hui, Ma Hui-Fen, Ma Dong-Rui, Wang Pan, Zhang Xiao-Wei, Zhang Zhen-Qiang

机构信息

Academy of Chinese Medical Sciences, Henan University of Chinese Medicine, No. 156 Jinshui East Road, Zhengzhou 450046, PR China.

College of Pharmacy, Henan University of Chinese Medicine, No. 156 Jinshui East Road, Zhengzhou 450046, PR China.

出版信息

Phytomedicine. 2023 Apr;112:154711. doi: 10.1016/j.phymed.2023.154711. Epub 2023 Feb 9.

Abstract

BACKGROUND

Autophagic flux is coordinated by a network of master regulatory genes, which centered on transcription factor EB (TFEB). The disorders of autophagic flux are closely associated with Alzheimer's disease (AD), and thus restoring autophagic flux to degrade pathogenic proteins has become a hot therapeutic strategy. Hederagenin (HD), a triterpene compound, isolated from a variety food such as Matoa (Pometia pinnata) Fruit, Medicago sativa, Medicago polymorpha L. Previous studies have shown that HD has the neuroprotective effect. However, the effect of HD on AD and underlying mechanisms are unclear.

PURPOSE

To determine the effect of HD on AD and whether it promotes autophagy to reduce AD symptoms.

STUDY DESIGN

BV2 cells, C. elegans and APP/PS1 transgenic mice were used to explore the alleviative effect of HD on AD and the molecular mechanism in vivo and in vitro.

METHODS

The APP/PS1 transgenic mice at 10 months were randomized into 5 groups (n = 10 in each group) and orally administrated with either vehicle (0.5% CMCNa), WY14643 (10 mg/kg/d), low-dose of HD (25 mg/kg/d), high-dose of HD (50 mg/kg/d) or MK-886 (10 mg/kg/d) + HD (50 mg/kg/d) for consecutive 2 months. The behavioral experiments including morris water maze test, object recognition test and Y maze test were performed. The effects of HD on Aβ deposition and alleviates Aβ pathology in transgenic C. elegans were operated using paralysis assay and fluorescence staining assay. The roles of HD in promoting PPARα/TFEB-dependent autophagy were investigated using the BV2 cells via western blot analysis, real-time quantitative PCR (RT-qPCR), molecular docking, molecular dynamic (MD) simulation, electron microscope assay and immunofluorescence.

RESULTS

In this study, we found that HD upregulated mRNA and protein level of TFEB and increased the distribution of TFEB in the nucleus, and the expressions of its target genes. HD also promoted the expressions of LC3BII/LC3BI, LAMP2, etc., and promoted autophagy and the degradation of Aβ. HD reduced Aβ deposition in the head area of C. elegans and Aβ-induced paralysis. HD improved cognitive impairment and pathological changes in APP/PS1 mice by promoting autophagy and activating TFEB. And our results also showed that HD could strongly target PPARα. More importantly, these effects were reversed by treatment of MK-886, a selective PPARα antagonist.

CONCLUSION

Our present findings demonstrated that HD attenuated the pathology of AD through inducing autophagy and the underlying mechanism associated with PPARα/TFEB pathway.

摘要

背景

自噬流由一个以转录因子EB(TFEB)为核心的主调控基因网络协调。自噬流紊乱与阿尔茨海默病(AD)密切相关,因此恢复自噬流以降解致病蛋白已成为热门的治疗策略。羽扇豆醇(HD)是一种三萜化合物,可从多种食物中分离得到,如马六甲果(Pometia pinnata)、紫花苜蓿、天蓝苜蓿。先前的研究表明,HD具有神经保护作用。然而,HD对AD的影响及其潜在机制尚不清楚。

目的

确定HD对AD的影响以及它是否通过促进自噬来减轻AD症状。

研究设计

使用BV2细胞、秀丽隐杆线虫和APP/PS1转基因小鼠来探究HD在体内和体外对AD的缓解作用及其分子机制。

方法

将10月龄的APP/PS1转基因小鼠随机分为5组(每组n = 10),分别口服给予溶媒(0.5%羧甲基纤维素钠)、WY14643(10 mg/kg/d)、低剂量HD(25 mg/kg/d)、高剂量HD(50 mg/kg/d)或MK - 886(10 mg/kg/d)+ HD(50 mg/kg/d),连续给药2个月。进行包括莫里斯水迷宫试验、物体识别试验和Y迷宫试验在内的行为学实验。使用瘫痪试验和荧光染色试验研究HD对转基因秀丽隐杆线虫中Aβ沉积和减轻Aβ病理的影响。通过蛋白质免疫印迹分析、实时定量PCR(RT - qPCR)、分子对接、分子动力学(MD)模拟、电子显微镜检测和免疫荧光,研究HD在BV2细胞中促进PPARα/TFEB依赖性自噬的作用。

结果

在本研究中,我们发现HD上调了TFEB的mRNA和蛋白水平,增加了TFEB在细胞核中的分布及其靶基因的表达。HD还促进了LC3BII/LC3BI、LAMP2等的表达,促进了自噬和Aβ的降解。HD减少了秀丽隐杆线虫头部区域的Aβ沉积和Aβ诱导的瘫痪。HD通过促进自噬和激活TFEB改善了APP/PS1小鼠的认知障碍和病理变化。我们的结果还表明,HD可以强烈靶向PPARα。更重要的是,这些作用被选择性PPARα拮抗剂MK - 886的处理所逆转。

结论

我们目前的研究结果表明,HD通过诱导自噬减轻了AD的病理,其潜在机制与PPARα/TFEB途径有关。

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