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长时间缺血通过损害脯氨酰羟化作用,在复氧时阻止缺氧诱导因子1α(HIF1α)降解:三羧酸循环代谢产物的作用

Extended ischemia prevents HIF1alpha degradation at reoxygenation by impairing prolyl-hydroxylation: role of Krebs cycle metabolites.

作者信息

Serra-Pérez Anna, Planas Anna M, Núñez-O'Mara Analía, Berra Edurne, García-Villoria Judit, Ribes Antònia, Santalucía Tomàs

机构信息

Department of Brain Ischemia and Neurodegeneration, Institute of Biomedical Research of Barcelona, Consejo Superior de Investigaciones Científicas, Institut d'Investigacions Biomèdiques August Pi i Sunyer, 08036 Barcelona, Spain.

出版信息

J Biol Chem. 2010 Jun 11;285(24):18217-24. doi: 10.1074/jbc.M110.101048. Epub 2010 Apr 5.

Abstract

Hypoxia-inducible factor (HIF) is a heterodimeric transcription factor that activates the cellular response to hypoxia. The HIF1alpha subunit is constantly synthesized and degraded under normoxia, but degradation is rapidly inhibited when oxygen levels drop. Oxygen-dependent hydroxylation by prolyl-4-hydroxylases (PHD) mediates HIF1alpha proteasome degradation. Brain ischemia limits the availability not only of oxygen but also of glucose. We hypothesized that this circumstance could have a modulating effect on HIF. We assessed the separate involvement of oxygen and glucose in HIF1alpha regulation in differentiated neuroblastoma cells subjected to ischemia. We report higher transcriptional activity and HIF1alpha expression under oxygen deprivation in the presence of glucose (OD), than in its absence (oxygen and glucose deprivation, OGD). Unexpectedly, HIF1alpha was not degraded at reoxygenation after an episode of OGD. This was not due to impairment of proteasome function, but was associated with lower HIF1alpha hydroxylation. Krebs cycle metabolites fumarate and succinate are known inhibitors of PHD, while alpha-ketoglutarate is a co-substrate of the reaction. Lack of HIF1alpha degradation in the presence of oxygen was accompanied by a very low alpha-ketoglutarate/fumarate ratio. Furthermore, treatment with a fumarate analogue prevented HIF1alpha degradation under normoxia. In all, our data suggest that postischemic metabolic alterations in Krebs cycle metabolites impair HIF1alpha degradation in the presence of oxygen by decreasing its hydroxylation, and highlight the involvement of metabolic pathways in HIF1alpha regulation besides the well known effects of oxygen.

摘要

缺氧诱导因子(HIF)是一种异二聚体转录因子,可激活细胞对缺氧的反应。HIF1α亚基在常氧条件下持续合成和降解,但当氧水平下降时,降解迅速受到抑制。脯氨酰-4-羟化酶(PHD)介导的氧依赖性羟基化作用可介导HIF1α的蛋白酶体降解。脑缺血不仅会限制氧气的供应,还会限制葡萄糖的供应。我们推测这种情况可能会对HIF产生调节作用。我们评估了在遭受缺血的分化神经母细胞瘤细胞中,氧气和葡萄糖在HIF1α调节中的单独作用。我们报告,在有葡萄糖存在的缺氧条件下(OD),与无葡萄糖存在时(缺氧和葡萄糖剥夺,OGD)相比,转录活性和HIF1α表达更高。出乎意料的是,OGD发作后再给氧时,HIF1α并未降解。这不是由于蛋白酶体功能受损,而是与较低的HIF1α羟基化有关。已知三羧酸循环代谢物富马酸和琥珀酸是PHD的抑制剂,而α-酮戊二酸是该反应的共底物。在有氧存在的情况下,HIF1α缺乏降解伴随着极低的α-酮戊二酸/富马酸比率。此外,用富马酸类似物处理可防止常氧条件下HIF1α的降解。总之,我们的数据表明,三羧酸循环代谢物的缺血后代谢改变通过降低其羟基化作用,损害了有氧存在时HIF1α的降解,并突出了代谢途径在HIF1α调节中的作用,这除了氧的众所周知的作用外。

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