内源性活性氧和一氧化氮在缺氧星形胶质细胞中调控hif -1 α表达的作用相反。

Qingquan Chen, Wenlan Liu, Xi Sun, Ke Jian Liu, Rong Pan
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引用次数: 1

摘要

缺血性脑卒中导致脑组织缺氧,缺氧诱导因子(hypoxia inducible factor, HIF)表达增加,与缺血性脑损伤密切相关。了解hif -1 α在缺血性脑中的调节机制一直是一个重要的研究热点。在缺氧/缺血条件下,一氧化氮(NO)和活性氧(ROS)的生成都会增加,它们各自都被证明可以独立调节hif -1 α的表达。在本研究中,我们研究了NO和ROS对缺氧星形胶质细胞中hif -1 α表达的交叉影响。星形胶质细胞暴露于2 h缺氧显著增加hif -1 α蛋白水平,并伴有NO和ROS的增加。NAC、NADPH氧化酶抑制剂DPI或SOD模拟物MnTMPyP可降低缺氧诱导的hif -1 α蛋白积累,并增加缺氧星形胶质细胞中的NO水平。NO合成酶(NOS)抑制剂L-NAME抑制ROS生成,导致缺氧诱导的hif -1 α蛋白表达降低。虽然单独使用NOS抑制剂或ROS清除剂可降低hif -1 α蛋白水平,但当NOS抑制剂和ROS清除剂同时存在时,hif -1 α蛋白水平的降低被逆转。一氧化氮清除剂PTIO增加缺氧诱导的hif -1 α蛋白表达和ROS生成,而一氧化氮清除剂和活性氧清除剂同时存在时hif -1 α蛋白水平降低。这些结果表明,在缺氧条件下,ROS、NO及其相互作用对缺氧诱导的hif -1 α蛋白积累的调节起着至关重要的作用。此外,我们的研究结果表明,缺氧诱导的NO生成可能是一种内源性机制,可以通过抑制缺氧诱导的hif -1 α蛋白积累来平衡ros介导的缺氧应激。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Endogenous reactive oxygen species and nitric oxide have opposite roles in regulating HIF-1alpha expression in hypoxic astrocytes.

Ischemic stroke results in cerebral tissue hypoxia and increased expression of hypoxia-inducible factor (HIF), which is critically implicated in ischemic brain injury. Understanding the mechanisms of HIF-1alpha regulation in the ischemic brain has been an important research focus. The generation of both nitric oxide (NO) and reactive oxygen species (ROS) is increased under hypoxic/ischemic conditions and each of them has been independently shown to regulate HIF-1alpha expression. In this study, we investigated the cross-effects of NO and ROS on the expression of HIF-1alpha in hypoxic astrocytes. Exposure of astrocytes to 2 h-hypoxia remarkably increased HIF-1alpha protein levels, which was accompanied by increased NO and ROS production. Decreasing ROS with NAC, NADPH oxidase inhibitor DPI, or SOD mimetic MnTMPyP decreased hypoxia-induced HIF-1alpha protein accumulation and increased NO level in hypoxic astrocytes. The NO synthase (NOS) inhibitor L-NAME inhibited ROS generation, which led to a reduction in hypoxia-induced HIF-1alpha protein expression. Although NOS inhibitor or ROS scavengers alone reduced HIF-1alpha protein levels, the reduction was reversed when NOS inhibitor and ROS scavenger present together. The NO scavenger PTIO increased hypoxia-induced HIF-1alpha protein expression and ROS production, while HIF-1alpha protein level was decreased in the presence of NO scavenger and ROS scavenger together. These results suggest that ROS, NO, and their interaction critically contribute to the regulation of hypoxia-induced HIF-1alpha protein accumulation under hypoxic condition. Furthermore, our results indicate that hypoxia-induced NO generation may represent an endogenous mechanism for balancing ROS-mediated hypoxic stress, as reflected by inhibiting hypoxia-induced HIF-1alpha protein accumulation.

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