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AMP-Activated Protein Kinase Functionally Phosphorylates Endothelial Nitric Oxide Synthase Ser633

机译:AMP激活的蛋白激酶功能性磷酸化内皮一氧化氮合酶Ser633

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摘要

Endothelial nitric oxide synthase (eNOS) plays a central role in maintaining cardiovascular homeostasis by controlling NO bioavailability. The activity of eNOS in vascular endothelial cells (ECs) largely depends on posttranslational modifications, including phosphorylation. Because the activity of AMP-activated protein kinase (AMPK) in ECs can be increased by multiple cardiovascular events, we studied the phosphorylation of eNOS Ser633 by AMPK and examined its functional relevance in the mouse models. Shear stress, atorvastatin, and adiponectin all increased AMPK Thr172 and eNOS Ser633 phosphorylations, which were abolished if AMPK was pharmacologically inhibited or genetically ablated. The constitutively active form of AMPK or an AMPK agonist caused a sustained Ser633 phosphorylation. Expression of gain-/loss-of-function eNOS mutants revealed that Ser633 phosphorylation is important for NO production. The aorta of AMPKα2−/− mice showed attenuated atorvastatin-induced eNOS phosphorylation. Nano–liquid chromatography/tandem mass spectrometry (LC/MS/MS) confirmed that eNOS Ser633 was able to compete with Ser1177 or acetyl-coenzyme A carboxylase Ser79 for AMPKα phosphorylation. Nano-LC/MS/MS confirmed that eNOS purified from AICAR-treated ECs was phosphorylated at both Ser633 and Ser1177. Our results indicate that AMPK phosphorylation of eNOS Ser633 is a functional signaling event for NO bioavailability in ECs.
机译:内皮型一氧化氮合酶(eNOS)通过控制NO的生物利用度在维持心血管稳态中起着重要作用。 eNOS在血管内皮细胞(EC)中的活性在很大程度上取决于翻译后修饰,包括磷酸化作用。由于可以通过多次心血管事件增加EC中AMP激活的蛋白激酶(AMPK)的活性,因此我们研究了AMPK对eNOS Ser633的磷酸化作用,并在小鼠模型中检查了其功能相关性。剪切应力,阿托伐他汀和脂联素均增加了AMPK Thr172和eNOS Ser633的磷酸化,如果AMPK被药理抑制或基因消除则将被消除。 AMPK或AMPK激动剂的组成型活性形式引起持续的Ser633磷酸化。功能获得/丧失功能的eNOS突变体的表达表明,Ser633磷酸化对于NO产生很重要。 AMPKα2-/-小鼠的主动脉显示阿托伐他汀诱导的eNOS磷酸化减弱。纳米液相色谱/串联质谱(LC / MS / MS)证实eNOS Ser633能够与Ser1177或乙酰辅酶A羧化酶Ser79竞争AMPKα磷酸化。 Nano-LC / MS / MS证实从AICAR处理的EC纯化的eNOS在Ser633和Ser1177处均被磷酸化。我们的结果表明eNOS Ser633的AMPK磷酸化是EC中NO生物利用度的功能性信号事件。

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