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TNF-α 激活的 eNOS 信号通过 -亚硝基化途径增加白细胞黏附。

TNF-α-activated eNOS signaling increases leukocyte adhesion through the -nitrosylation pathway.

机构信息

Instituto de Inmunología, Facultad de Medicina, Universidad Austral de Chile, Valdivia, Chile.

Instituto de Fisiología, Facultad de Medicina, Universidad Austral de Chile, Valdivia, Chile.

出版信息

Am J Physiol Heart Circ Physiol. 2021 Dec 1;321(6):H1083-H1095. doi: 10.1152/ajpheart.00065.2021. Epub 2021 Oct 15.

Abstract

Nitric oxide (NO) is a key factor in inflammation. Endothelial nitric oxide synthase (eNOS), whose activity increases after stimulation with proinflammatory cytokines, produces NO in endothelium. NO activates two pathways: ) soluble guanylate cyclase-protein kinase G and ) -nitrosylation (NO-induced modification of free-thiol cysteines in proteins). -nitrosylation affects phosphorylation, localization, and protein interactions. NO is classically described as a negative regulator of leukocyte adhesion to endothelial cells. However, agonists activating NO production induce a fast leukocyte adhesion, which suggests that NO might positively regulate leukocyte adhesion. We tested the hypothesis that eNOS-induced NO promotes leukocyte adhesion through the -nitrosylation pathway. We stimulated leukocyte adhesion to endothelium in vitro and in vivo using tumor necrosis factor-α (TNF-α) as proinflammatory agonist. ICAM-1 changes were evaluated by immunofluorescence, subcellular fractionation, immunoprecipitation, and fluorescence recovery after photobleaching (FRAP). Protein kinase Cζ (PKCζ) activity and -nitrosylation were evaluated by Western blot analysis and biotin switch method, respectively. TNF-α, at short times of stimulation, activated the eNOS -nitrosylation pathway and caused leukocyte adhesion to endothelial cells in vivo and in vitro. TNF-α-induced NO led to changes in ICAM-1 at the cell surface, which are characteristic of clustering. TNF-α-induced NO also produced -nitrosylation and phosphorylation of PKCζ, association of PKCζ with ICAM-1, and ICAM-1 phosphorylation. The inhibition of PKCζ blocked leukocyte adhesion induced by TNF-α. Mass spectrometry analysis of purified PKCζ identified cysteine 503 as the only -nitrosylated residue in the kinase domain of the protein. Our results reveal a new eNOS -nitrosylation-dependent mechanism that induces leukocyte adhesion and suggests that -nitrosylation of PKCζ may be an important regulatory step in early leukocyte adhesion in inflammation. Contrary to the well-established inhibitory role of NO in leukocyte adhesion, we demonstrate a positive role of nitric oxide in this process. We demonstrate that NO induced by eNOS after TNF-α treatment induces early leukocyte adhesion activating the -nitrosylation pathway. Our data suggest that PKCζ -nitrosylation may be a key step in this process.

摘要

一氧化氮 (NO) 是炎症的关键因素。内皮型一氧化氮合酶 (eNOS) 在受到促炎细胞因子刺激后活性增加,在内皮细胞中产生 NO。NO 激活两条途径:(1)可溶性鸟苷酸环化酶-蛋白激酶 G 和(2)-亚硝基化(NO 诱导蛋白质中游离巯基半胱氨酸的修饰)。-亚硝基化会影响磷酸化、定位和蛋白质相互作用。NO 通常被描述为白细胞黏附到内皮细胞的负调节剂。然而,激活 NO 产生的激动剂诱导快速的白细胞黏附,这表明 NO 可能正向调节白细胞黏附。我们检验了这样一个假设,即 eNOS 诱导的 NO 通过 -亚硝基化途径促进白细胞黏附。我们使用肿瘤坏死因子-α (TNF-α) 作为促炎激动剂,在体外和体内刺激白细胞黏附到内皮细胞。通过免疫荧光、亚细胞分级分离、免疫沉淀和光漂白后荧光恢复 (FRAP) 评估 ICAM-1 的变化。通过 Western blot 分析和生物素转移法分别评估蛋白激酶 Cζ (PKCζ) 的活性和 -亚硝基化。在短时间的刺激下,TNF-α 激活了 eNOS 的 -亚硝基化途径,并导致体内和体外的白细胞黏附到内皮细胞。TNF-α 诱导的 NO 导致细胞表面 ICAM-1 发生变化,这些变化是聚类的特征。TNF-α 诱导的 NO 还产生了 PKCζ 的 -亚硝基化和磷酸化、PKCζ 与 ICAM-1 的结合以及 ICAM-1 的磷酸化。PKCζ 的抑制阻断了 TNF-α 诱导的白细胞黏附。纯化的 PKCζ 的质谱分析鉴定出蛋白激酶结构域中半胱氨酸 503 为唯一的 -亚硝基化残基。我们的结果揭示了一种新的 eNOS -亚硝基化依赖性机制,该机制诱导白细胞黏附,并表明 PKCζ 的 -亚硝基化可能是炎症中早期白细胞黏附的一个重要调节步骤。与 NO 在白细胞黏附中的抑制作用相反,我们证明了一氧化氮在这个过程中的积极作用。我们证明,TNF-α 处理后 eNOS 诱导的 NO 诱导早期白细胞黏附,激活 -亚硝基化途径。我们的数据表明,PKCζ 的 -亚硝基化可能是这个过程中的关键步骤。

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