甜菜素是红甜菜的天然产物,通过激活自噬改善内皮功能障碍。

IF 3.5 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Junpei Li, Luyan Xu, Duoduo Zha, Yixiong Zhan, Yijia Wu, Xianxian Mao, Li Zuo, Xinyan Bai, Linsiqi Wang, Kunhua Chen, Jinghua Luo, Yisong Qian
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引用次数: 0

摘要

目的:内皮功能障碍是内皮细胞调节细胞和溶质通过血管的病理能力的改变,这是炎症性疾病发生的基础。甜菜素(betanidin-5-O-β-glucoside)是富含红甜菜的天然产物,是一种水溶性含氮色素,其对心血管疾病的潜在保护作用已被报道。在本研究中,我们研究了甜菜素在TNFα诱导的血管内皮功能障碍中的保护作用,并探讨了可能的机制。方法:通过TNFα刺激人脐静脉内皮细胞(HUVECs),建立内皮功能障碍模型,并通过MTT法、western blotting和免疫荧光染色检测甜菜素的作用及其可能的作用机制。通过LPS建立小鼠全身炎症模型,探讨甜菜素的保护作用。结果:甜菜素预处理可提高HUVECs细胞活力,抑制细胞间细胞粘附分子-1 (ICAM-1)和血管细胞粘附分子-1 (VCAM- 1)的表达,并通过上调TNFα刺激后occludin和zoonula occludens-1 (ZO-1)的表达改善内皮细胞紧密连接。在内皮-间质转化方面,甜菜素上调内皮表型VE-cadherin和CD31的表达,抑制间质表型N-cadherin的表达,表明在tnf α刺激的huvec中,甜菜素减少了内皮-间质转化。此外,甜菜素增加了LC3的表达,降低了自噬中两种中心蛋白p62的表达。甜菜素还能逆转TNFα暴露后的异常自噬通量。然而,特异性自噬抑制剂3-甲基腺嘌呤阻断了甜菜素的保护作用。最后,在小鼠全身炎症模型中,甜菜素可显著降低ICAM-1和VCAM-1的表达,上调occludin和ZO-1的水平。结论:上述结果提示,甜菜素可能通过促进自噬来改善内皮功能障碍,从而对心血管健康产生有益作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Betanin, a Natural Product from Red Beets, Improves Endothelial Dysfunction through Activation of Autophagy.

Objective: Endothelial dysfunction is the altered pathological ability of endothelial cells to modulate the passage of cells and solutes across vessels, which underlies the development of inflammatory diseases. Betanin (betanidin-5-O-β-glucoside), a natural product rich in red beets, is a water-soluble nitrogen-containing pigment, and its potential protective effects on cardiovascular disease have been reported. In this study, we investigated the protective role of betanin in vascular endothelial dysfunction induced by TNFα and explored potential mechanisms.

Methods: We modelled endothelial dysfunction through TNFα stimulation in human umbilical vein endothelial cells (HUVECs) and examined the role of betanin and its possible mechanism of action by MTT assay, western blotting, and immunofluorescence staining. A systemic inflammation model of mice was built through LPS to investigate the protective roles of betanin.

Results: Betanin pre-treatment increased cell viability, inhibited the expression of intercellular cell adhesion molecule-1 (ICAM-1) and vascular cell adhesion molecule-1 (VCAM- 1), and improved endothelial tight junction by upregulating the expression of occludin and zonula occludens-1 (ZO-1) after TNFα stimulation in HUVECs. In terms of endothelial-mesenchymal transition, betanin up-regulated the expression of endothelial phenotypes VE-cadherin and CD31, whereas it inhibited the expression of mesenchymal phenotype N-cadherin, indicating that betanin reduced endothelial-mesenchymal transition in TNFα-stimulated HUVECs. In addition, betanin increased the expression of LC3 and decreased the expression of p62, two central proteins in autophagy. Betanin also reversed the abnormal autophagic flux after TNFα exposure. However, the specific autophagy inhibitor, 3-methyladenine, blocked the protective effect of betanin. Finally, betanin was found to greatly decrease ICAM-1 and VCAM-1 expression, and upregulate occludin and ZO-1 levels in a systemic inflammation model of mice.

Conclusions: The above results collectively suggested that betanin may improve endothelial dysfunction by promoting autophagy, thus exerting beneficial effects on cardiovascular health.

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来源期刊
Current medicinal chemistry
Current medicinal chemistry 医学-生化与分子生物学
CiteScore
8.60
自引率
2.40%
发文量
468
审稿时长
3 months
期刊介绍: Aims & Scope Current Medicinal Chemistry covers all the latest and outstanding developments in medicinal chemistry and rational drug design. Each issue contains a series of timely in-depth reviews and guest edited thematic issues written by leaders in the field covering a range of the current topics in medicinal chemistry. The journal also publishes reviews on recent patents. Current Medicinal Chemistry is an essential journal for every medicinal chemist who wishes to be kept informed and up-to-date with the latest and most important developments.
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