西洛他唑
愤怒(情绪)
血管平滑肌
信号转导
糖基化
基因敲除
细胞生物学
MAPK/ERK通路
内科学
细胞粘附分子
内分泌学
化学
医学
生物
受体
细胞凋亡
生物化学
神经科学
阿司匹林
平滑肌
作者
Sheng‐Chiang Su,Yi‐Jen Hung,Chia‐Luen Huang,Yi‐Shing Shieh,Chu‐Yen Chien,Chi‐Fu Chiang,Jhih‐Syuan Liu,Chieh‐Hua Lu,Chang‐Hsun Hsieh,Chien‐Ming Lin,Chien-Hsing Lee
标识
DOI:10.1186/s12929-019-0550-9
摘要
BACKGROUND: Increasing evidence suggests that high glucose (HG) causes abnormalities in endothelial and vascular smooth muscle cell function (VSMC) and contributes to atherosclerosis. Receptor for advanced glycation end-products (RAGE) has been linked to the pathogenesis of both the macrovascular and microvascular complications of diabetes. Cilostazol is used to treat diabetic vasculopathy by ameliorating HG-induced vascular dysfunction. OBJECTIVES: In this study, we investigated whether the cilostazol suppression of HG-induced VSMC dysfunction is through RAGE signaling and its possible regulation mechanism. METHOD: We investigated the effect of HG and cilostazol on RAGE signaling in A7r5 rat VSMCs. Aortic tissues of streptozotocin (STZ) diabetic mice were also collected. RESULTS: Aortic tissue samples from the diabetic mice exhibited a significantly decreased RAGE expression after cilostazol treatment. HG increased RAGE, focal adhesion kinase (FAK), matrix metalloproteinase-2 (MMP-2), intercellular cell adhesion molecule-1 (ICAM-1) and vascular cell adhesion molecule-1 (VCAM-1) expressions, and was accompanied with increased reactive oxygen species (ROS), cell proliferation, adhesion and migration. Cilostazol significantly reversed HG-induced RAGE, ROS, downstream gene expressions and cell functions. RAGE knockdown significantly reversed the expressions of HG-induced vasculopathy related gene expressions and cell functions. Cilostazol with RAGE knockdown had additive effects on downstream ERK/NF-κB signaling pathways, gene expressions and cell functions of A7r5 rat VSMCs in HG culture. CONCLUSIONS: Both in vitro and in vivo experimental diabetes models showed novel signal transduction of cilostazol-mediated protection against HG-related VSMC dysfunction, and highlighted the involvement of RAGE signaling and downstream pathways.
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