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糖萼唾液酸通过流体切应力调控人内皮细胞中的 Nrf2 信号通路。

Glycocalyx sialic acids regulate Nrf2-mediated signaling by fluid shear stress in human endothelial cells.

机构信息

King's British Heart Foundation Centre of Research Excellence, School of Cardiovascular Medicine & Sciences, Faculty of Life Sciences & Medicine, King's College London, London, SE1 9NH, United Kingdom.

Centre for Ultrastructural Imaging, Faculty of Life Sciences & Medicine, King's College London, London, SE1 1UL, United Kingdom.

出版信息

Redox Biol. 2021 Jan;38:101816. doi: 10.1016/j.redox.2020.101816. Epub 2020 Nov 28.

Abstract

Activation of the nuclear factor erythroid 2-related factor 2 (Nrf2) pathway is critical for vascular endothelial redox homeostasis in regions of high, unidirectional shear stress (USS), however the underlying mechanosensitive mediators are not fully understood. The endothelial glycocalyx is disrupted in arterial areas exposed to disturbed blood flow that also exhibit enhanced oxidative stress leading to atherogenesis. We investigated the contribution of glycocalyx sialic acids (SIA) to Nrf2 signaling in human endothelial cells (EC) exposed to atheroprotective USS or atherogenic low oscillatory shear stress (OSS). Cells exposed to USS exhibited a thicker glycocalyx and enhanced turnover of SIA which was reduced in cells cultured under OSS. Physiological USS, but not disturbed OSS, enhanced Nrf2-mediated expression of antioxidant enzymes, which was attenuated following SIA cleavage with exogenous neuraminidase. SIA removal disrupted kinase signaling involved in the nuclear accumulation of Nrf2 elicited by USS and promoted mitochondrial reactive oxygen species accumulation. Notably, knockdown of the endogenous sialidase NEU1 potentiated Nrf2 target gene expression, directly implicating SIA in regulation of Nrf2 signaling by USS. In the absence of SIA, deficits in Nrf2 responses to physiological flow were also associated with a pro-inflammatory EC phenotype. This study demonstrates that the glycocalyx modulates endothelial redox state in response to shear stress and provides the first evidence of an atheroprotective synergism between SIA and Nrf2 antioxidant signaling. The endothelial glycocalyx therefore represents a potential therapeutic target against EC dysfunction in cardiovascular disease and redox dyshomeostasis in ageing.

摘要

核因子红细胞 2 相关因子 2(Nrf2)通路的激活对于高单向切应力(USS)区域的血管内皮氧化还原稳态至关重要,但是,其潜在的机械敏感介质尚不完全清楚。暴露于紊乱血流的动脉区域的内皮糖萼被破坏,这些区域也表现出增强的氧化应激,导致动脉粥样硬化形成。我们研究了糖萼唾液酸(SIA)对暴露于抗动脉粥样硬化 USS 或促动脉粥样硬化低振荡剪切应力(OSS)的人内皮细胞(EC)中 Nrf2 信号的贡献。暴露于 USS 的细胞表现出更厚的糖萼和增强的 SIA 周转率,而在 OSS 下培养的细胞中的 SIA 周转率降低。生理 USS,但不是紊乱的 OSS,增强了 Nrf2 介导的抗氧化酶表达,而用外源性神经氨酸酶进行 SIA 切割后则减弱。SIA 去除破坏了涉及由 USS 引起的 Nrf2 核积累的激酶信号,促进了线粒体活性氧的积累。值得注意的是,内源性神经氨酸酶 NEU1 的敲低增强了 Nrf2 靶基因的表达,直接表明 SIA 参与了 USS 对 Nrf2 信号的调节。在没有 SIA 的情况下,Nrf2 对生理流动的反应缺陷也与 EC 的促炎表型有关。这项研究表明,糖萼可调节内皮细胞对剪切应力的氧化还原状态,并首次提供了 SIA 和 Nrf2 抗氧化信号之间的抗动脉粥样硬化协同作用的证据。因此,内皮糖萼代表了针对心血管疾病中 EC 功能障碍和衰老中氧化还原失调的潜在治疗靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c264/7750408/22ff21eadd37/fx1.jpg

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