Astragali radix vesicle-like nanoparticles improve energy metabolism disorders by repairing the intestinal mucosal barrier and regulating amino acid metabolism in sleep-deprived mice.

IF 10.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2024-12-19 DOI:10.1186/s12951-024-03034-x
Yue Yuan, Wenjing Gao, Yunxiao Gao, Qiuyan Zhang, Yali Shi, Na Zhang, Guochao Song, Longxiao Hu, Yunyao Jiang, Jianxun Liu, Junguo Ren
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Abstract

Background: Sleep disorder is widespread and involves a variety of intricate factors in its development. Sleep deprivation is a manifestation of sleep disorder, can lead to energy metabolism disturbances, weakened immune system, and compromised body functions. In extreme situations, sleep deprivation can cause organ failure, presenting significant risks to human health.

Purpose: This study aimed to investigate the efficacy and mechanisms of Astragalus Radix vesicles-like nanoparticles (AR-VLNs) in counteracting the deleterious effects of sleep deprivation.

Methods: The ICR mice were divided into control, model, AR-VLNs high dose (equivalent to 20 g/kg crude drug), AR-VLNs low dose (equivalent to 10 g/kg crude drug), AR high dose (equivalent to 20 g/kg crude drug), and AR low dose (equivalent to 10 g/kg crude drug). The REM (rapid eye movement) sleep-deprivation model was established, and evaluations were conducted for motor function, antioxidant capacity, and energy metabolism indices. Moreover, CACO-2 cells damage was induced with lipopolysaccharide to evaluate the repairing ability of AR-VLNs on the intestinal cell mucosa by measuring permeability. Furthermore, metabolomics was employed to elucidate the mechanisms of AR-VLNs action.

Results: AR-VLNs were demonstrated to enhance the motor efficiency and antioxidant capacity in REM sleep-deprived mice, while also minimized pathological damage and restored the integrity of the intestinal mucosal barrier. In vitro experiments indicated the anti-inflammatory effect of AR-VLNs against LPS-induced cell damage. Additionally, metabolomic analysis linked these effects with regulation of the amino acid metabolic pathways. Further confirmation from molecular biology experiments revealed that the protective effects of AR-VLNs against the deleterious effects of REM sleep deprivation were associated with the restoration of the intestinal mucosal barrier and the enhancement of amino acid metabolism.

Conclusion: AR-VLNs administration effectively improved energy metabolism disorders in REM sleep deprived mice, by facilitating the repair of the intestinal mucosal barrier and regulating the amino acid metabolism.

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黄芪囊泡样纳米颗粒通过修复肠道黏膜屏障和调节氨基酸代谢改善睡眠不足小鼠的能量代谢紊乱。
背景:睡眠障碍是广泛存在的,其发展涉及多种复杂的因素。睡眠不足是睡眠障碍的一种表现,会导致能量代谢紊乱、免疫系统减弱和身体功能受损。在极端情况下,睡眠不足会导致器官衰竭,对人体健康构成重大威胁。目的:研究黄芪囊泡样纳米颗粒(AR-VLNs)对睡眠剥夺的拮抗作用及其机制。方法:将ICR小鼠分为对照组、模型小鼠、AR- vlns高剂量(相当于20 g/kg生药)、AR- vlns低剂量(相当于10 g/kg生药)、AR高剂量(相当于20 g/kg生药)、AR低剂量(相当于10 g/kg生药)。建立快速眼动睡眠剥夺模型,对大鼠运动功能、抗氧化能力和能量代谢指标进行评价。此外,采用脂多糖诱导CACO-2细胞损伤,通过测量通透性来评估AR-VLNs对肠细胞粘膜的修复能力。此外,我们利用代谢组学来阐明AR-VLNs的作用机制。结果:AR-VLNs可提高REM睡眠剥夺小鼠的运动效率和抗氧化能力,同时减少病理损伤,恢复肠黏膜屏障的完整性。体外实验表明AR-VLNs对lps诱导的细胞损伤具有抗炎作用。此外,代谢组学分析将这些影响与氨基酸代谢途径的调节联系起来。分子生物学实验进一步证实,AR-VLNs对REM睡眠剥夺有害影响的保护作用与肠黏膜屏障的恢复和氨基酸代谢的增强有关。结论:AR-VLNs通过促进肠黏膜屏障修复和调节氨基酸代谢,有效改善REM睡眠剥夺小鼠的能量代谢紊乱。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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