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4-Hydroxy tempol-induced impairment of mitochondrial function and augmentation of glucose transport in vascular endothelial and smooth muscle cells.

机译:4-羟基tempol诱导的血管内皮和平滑肌细胞线粒体功能损伤和葡萄糖转运增强。

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摘要

The water-soluble and cell permeable nitroxide derivative 4-hydroxy tempol (TPL) has been shown to reduce or ameliorate oxidative stress-induced dysfunction and damage in vascular endothelial cells. We studied the effects of TPL on glucose transport and metabolism in bovine aortic endothelial (VEC) and smooth muscle cells (VSMC) under normal and high glucose conditions. Normally, these cells operate an autoregulatory protective mechanism that limits the rate of glucose transport under hyperglycemic conditions by decreasing the cell content of their typical glucose transporter GLUT-1 mRNA and protein as well as its plasma membrane abundance. TPL augmented the rate of glucose transport both under normo- and hyperglycemic conditions by increasing GLUT-1 mRNA and protein content and its plasma membrane abundance in both types of cells, leading to an increased flux of glucose into the cells. These effects were found related to ROS-generating and oxidant activities of TPL and to a decreased rate of mitochondrial ATP production under both normo- and hyperglycemic conditions. Since impaired mitochondrial functions, and in particular decreased rate of ATP production, augment the expression of GLUT-1 protein and glucose transport and metabolism, we suggest that the stimulatory effects of TPL in vascular cells results from its unfavorable interactions in the mitochondrion. It is therefore suggested that effects of TPL in cells of cardiovascular system be evaluated in parallel to its adverse effects on glucose and energy metabolism.
机译:水溶性和细胞渗透性氮氧化物衍生物4-羟基tempol(TPL)已显示出可减轻或改善氧化应激引起的血管内皮细胞功能障碍和损伤。我们研究了在正常和高葡萄糖条件下,TPL对牛主动脉内皮(VEC)和平滑肌细胞(VSMC)中葡萄糖转运和代谢的影响。通常,这些细胞通过降低其典型葡萄糖转运蛋白GLUT-1 mRNA和蛋白质的细胞含量及其质膜丰度来限制高血糖条件下的葡萄糖转运速率,从而发挥自我调节保护机制。 TPL通过增加两种类型细胞中的GLUT-1 mRNA和蛋白质含量及其质膜丰度,增加了在正常血糖和高血糖条件下葡萄糖的转运速率,从而导致葡萄糖通入细胞的流量增加。发现这些效应与正常血糖和高血糖条件下TPL的ROS生成和氧化活性以及线粒体ATP生成速率降低有关。由于线粒体功能受损,尤其是ATP生成速率降低,会增加GLUT-1蛋白的表达以及葡萄糖的转运和代谢,因此我们认为TPL对血管细胞的刺激作用是由于其在线粒体中的不利相互作用所致。因此,建议将TPL在心血管系统细胞中的作用与其对葡萄糖和能量代谢的不利作用同时评估。

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