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首页> 外文期刊>Molecular cancer therapeutics >2-Deoxy-Glucose Downregulates Endothelial AKT and ERK via Interference with N-Linked Glycosylation, Induction of Endoplasmic Reticulum Stress, and GSK3 beta Activation
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2-Deoxy-Glucose Downregulates Endothelial AKT and ERK via Interference with N-Linked Glycosylation, Induction of Endoplasmic Reticulum Stress, and GSK3 beta Activation

机译:2-脱氧葡萄糖通过干扰N-联糖基化,诱导内质网应激和GSK3 beta激活来下调内皮AKT和ERK。

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摘要

Interference with endothelial cell metabolism is a promising, yet unexploited strategy for angiogenesis inhibition. We reported that the glucose analogue 2-deoxy-D-glucose (2-DG) inhibits angiogenesis at significantly lower concentrations than those required for tumor cytotoxicity. Here, we found that hypersensitivity to 2-DG in endothelial cells is not associated with enhanced drug uptake compared with tumor cells, but with time-dependent, endothelial-selective inhibition of AKT and ERK phosphorylation. Downregulation of these critical survival pathways is shown to be due to 2-DG's interference with N-linked glycosylation, leading to alterations in VEGFR2 (and downstream signaling) as well as induction of endoplasmic reticulum (ER) stress, GSK3b activation, and apoptosis. In vivo, periocular administration of 2-DG in LHBETATAG mice was associated with significant reduction of newly formed (CD105(+)) tumor capillaries, ER stress (GRP 78 expression), and endothelial apoptosis (TUNEL). These findings uniquely link N-linked glycosylation inhibition, ER stress, and ERK/AKT downregulation in endothelial cells, and provide a novel drug development strategy to overcome resistance mechanisms to currently available antiangiogenic agents. (C) 2015 AACR.
机译:干扰内皮细胞代谢是一种有希望但尚未开发的血管生成抑制策略。我们报道葡萄糖类似物2-脱氧-D-葡萄糖(2-DG)抑制血管生成的浓度明显低于肿瘤细胞毒性所需的浓度。在这里,我们发现与肿瘤细胞相比,内皮细胞对2-DG的超敏性与药物吸收增加无关,但与时间依赖性的内皮选择性抑制AKT和ERK磷酸化有关。这些关键的生存途径的下调显示是由于2-DG对N-联糖基化的干扰,导致VEGFR2的改变(和下游信号传导)以及内质网(ER)应激,GSK3b激活和凋亡的诱导。在体内,LHBETATAG小鼠的2-DG眼周给药与新形成的(CD105(+))肿瘤毛细血管,ER应激(GRP 78表达)和内皮细胞凋亡(TUNEL)的显着减少有关。这些发现独特地将内皮细胞中的N-联糖基化抑制,ER应激和ERK / AKT下调联系在一起,并提供了一种新的药物开发策略来克服对目前可用的抗血管生成剂的耐药机制。 (C)2015 AACR。

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