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首页> 外文期刊>Circulation: An Official Journal of the American Heart Association >Shear-Induced CCN1 Promotes Atheroprone Endothelial Phenotypes and Atherosclerosis
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Shear-Induced CCN1 Promotes Atheroprone Endothelial Phenotypes and Atherosclerosis

机译:剪切诱导的CCN1促进滴下内皮表型和动脉粥样硬化

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Background: Atherosclerosis occurs preferentially at the blood vessels encountering blood flow turbulence. The matricellular protein CCN1 is induced in endothelial cells by disturbed flow, and is expressed in advanced atherosclerotic lesions in patients and in the Apoe(-/-) mouse model. The role of CCN1 in atherosclerosis remains undefined. Methods: To assess the function of CCN1 in vivo, knock-in mice carrying the integrin alpha 6 beta 1-binding-defective mutant allele Ccn1-dm on the Apoe(-/-) background were tested in an atherosclerosis model generated by carotid artery ligation. Additionally, CCN1-regulated functional phenotypes of human umbilical vein endothelial cells, or primary mouse aortic endothelial cells isolated from wild-type and Ccn1(dm/dm) mice, were investigated in the in vitro shear stress experiments under unidirectional laminar shear stress (12 dyn/cm(2)) versus oscillatory shear stress (+/- 5 dyn/cm(2)) conditions. Results: We found that Ccn1 expression was upregulated in the arterial endothelium 3 days after ligation before any detectable structural changes, and intensified with the progression of atherosclerotic lesions. Compared with Apoe(-/-) controls, Ccn1(dm/dm)/Apoe(-/-) mice were remarkably resistant to ligation-induced plaque formation (n=6). These mice exhibited lower oxidative stress, expression of endothelin-1 and monocyte chemoattractant protein-1, and monocyte homing. CCN1/alpha 6 beta 1 critically mediated flow-induced activation of the pleiotropic transcription factor nuclear factor-kappa B and therefore the induction of atheroprone gene expression in the mouse arterial endothelium after ligation (n=6), or in cultured human umbilical vein endothelial cells or primary mouse aortic endothelial cells exposed to oscillatory shear stress (n=3 in triplicate). Interestingly, the activation of nuclear factor-kappa B by CCN1/alpha 6 beta 1 signaling prompted more production of CCN1 and alpha 6 beta 1. Blocking CCN1-alpha 6 beta 1 binding by the Ccn1-dm mutation or by T1 peptide (derived from an alpha 6 beta 1-binding sequence of CCN1) disrupted the positive-feedback regulation between CCN1/alpha 6 beta 1 and nuclear factor-kappa B, and prevented flow-induced atheroprone phenotypic alterations in endothelial cells or atherosclerosis in mice. Conclusions: These data demonstrate a causative role of CCN1 in atherosclerosis via modulating endothelial phenotypes. CCN1 binds to its receptor integrin alpha 6 beta 1 to activate nuclear factor-kappa B, thereby instigating a vicious circle to persistently promote atherogenesis. T1, a peptide antagonist selectively targeting CCN1-alpha 6 beta 1, can be further optimized for developing T1-mimetics to treat atherosclerosis.
机译:背景:动脉粥样硬化优先发生在遇到血流湍流的血管上。 Matricellular蛋白CCN1通过受干扰的流动诱导内皮细胞,并且在患者和Apoe( - / - )小鼠模型中以先进的动脉粥样硬化病变表达。 CCN1在动脉粥样硬化中的作用仍未确定。方法:为了评估CCN1在体内CCN1的功能,在由颈动脉产生的动脉粥样硬化模型中测试携带整合蛋白α6β1结合缺陷突变体等突变体等突变体CCN1-DM的敲击小鼠结扎。另外,在单向层状剪切应力下的体外剪切应力实验中,研究了人脐静脉内皮细胞的CCN1调节功能表型或从野生型和CCN1(DM / DM)小鼠中的原发性小鼠主动脉内皮细胞(12 DYN / CM(2))与振荡剪切应力(+/- 5达N / cm(2))条件。结果:我们发现CCN1表达在任何可检测的结构变化之前3天在连接后3天在动脉内皮中上调,并加剧动脉粥样硬化病变的进展。与ApoE( - / - )对照进行比较,CCN1(DM / DM)/ ApoE( - / - )小鼠与连接诱导的斑块形成显着抵抗(n = 6)。这些小鼠表现出较低的氧化应激,内皮素-1和单核细胞化学蛋白-1和单核细胞归巢的表达。 CCN1 /α6β1重视介导的流动诱导的肺炎转录因子核因子-Kappa-κB,因此在结扎(n = 6)或培养的人脐静脉内皮后,在小鼠动脉内皮中诱导静脉酮基因表达细胞或原发性小鼠主动脉内皮细胞暴露于振荡剪切应力(三种含量)。有趣的是,CCN1 /α6β1信号传导的核因子-Kappa B的激活促进了更多的CCN1和α6β1的产生1.阻断CCN1-α6β1通过CCN1-DM突变或通过T1肽(衍生自CCN1的α6β1结合序列中CCN1 /α6β1和核因子-Kappa B之间的正反馈调节破坏,并防止了小鼠内皮细胞或动脉粥样硬化的流动诱导的流动静脉曲张表型改变。结论:这些数据证明CCN1通过调节内皮表型在动脉粥样硬化中的致病作用。 CCN1与其受体整合素α6β1结合以激活核因子-Kappa B,从而煽动恶性圆圈以持续促进血液发生。 T1,选择性靶向CCN1-α6β1的肽拮抗剂可以进一步优化用于开发T1模拟物以治疗动脉粥样硬化。

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