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The thioredoxin system and redox regulation of nuclear factor-kappa B signaling.

机译:硫氧还蛋白系统和核因子-κB信号的氧化还原调节。

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摘要

The thioredoxin system consists of thioredoxin (Trx1) and thioredoxin reductase (TR1). The major function of Trx1 is to reduce oxidized protein substrates. TR1 regenerates the active site of Trx1 which becomes oxidized and temporarily inactive upon reduction of a substrate. Many of the substrates of the thioredoxin system are involved in antioxidant defense and in redox signaling, providing mechanistic links between the thioredoxin system and several diseases including cancer and diabetes.;The transcription factor NFkappaB controls inflammation, cell survival and proliferation, and is sensitive to compartment-specific redox regulation. Oxidizing conditions in the cytoplasm favor activation of the latent form of NFkappaB, while oxidizing conditions in the nucleus inhibit its activity. Accumulating evidence suggests that Trx1 increases the activity of nuclear NFkappaB by reducing an oxidized cysteine within the DNA binding domain. Because Trx1 is dependent on reducing equivalents from TR1, we hypothesized that inhibition of TR1 activity would inhibit NFkappaB activity through the accumulation of oxidized Trx1 resulting in an inability to reduce the DNA binding domain of NFkappaB.;In Chapter 2 of this dissertation we examined whether inhibition of TR1 leads to an accumulation of oxidized Trx1. Using siRNA against TR1 we demonstrated that Trx1 oxidation is not a direct or necessary result of loss of TR1 activity and that elevated levels of reactive oxygen species (ROS) are a better predictor of the redox status of Trx1 than TR1 activity. In Chapter 3 we probed the relationship between the thioredoxin system and NFkappaB activity using curcumin and 1,2-chlorodinitrobenzene (CDNB), two inhibitors of TR1. The data indicate that tumor necrosis factor-alpha (TNFalpha)-induced NFkappaB activity within the nucleus could be completely blocked by the two chemical TR1 inhibitors. Surprisingly, this NFkappaB inhibition was not mediated by oxidation of the DNA binding domain of NFkappaB, suggesting an alternative mechanism by which TR1 regulates NFkappaB. Building on the findings presented in Chapters 2 and 3, the relative contributions of TR1 and Trx1 toward NFkappaB regulation were elucidated in Chapter 4 using an siRNA-based approach. Knockdown of TR1 resulted in decreased TNFalpha-stimulated NFkappaB activity in the absence of either Trx1 oxidation or increased ROS generation, while knockdown of Trx1 had no effect on NFkappaB activity. Taken together, the studies reported here provide evidence in support of a novel Trx1-independent mechanism for the regulation of NFkappaB by TR1.
机译:硫氧还蛋白系统由硫氧还蛋白(Trx1)和硫氧还蛋白还原酶(TR1)组成。 Trx1的主要功能是还原氧化的蛋白质底物。 TR1再生Trx1的活性位点,该活性位点在被底物还原后被氧化并暂时失活。硫氧还蛋白系统的许多底物都参与了抗氧化防御和氧化还原信号传导,从而在硫氧还蛋白系统与包括癌症和糖尿病在内的多种疾病之间建立了机械联系;转录因子NFkappaB控制炎症,细胞存活和增殖,并且对特定于隔室的氧化还原调节。细胞质中的氧化条件有助于激活潜在形式的NFkappaB,而细胞核中的氧化条件抑制其活性。越来越多的证据表明,Trx1通过减少DNA结合域内的氧化半胱氨酸来增加核NFkappaB的活性。由于Trx1依赖于还原TR1的等价物,因此我们假设抑制TR1的活性将通过氧化的Trx1的积累抑制NFkappaB的活性,从而导致无法还原NFkappaB的DNA结合域。抑制TR1会导致氧化的Trx1积累。使用针对TR1的siRNA,我们证明了Trx1的氧化不是TR1活性丧失的直接或必要结果,而活性氧(ROS)的水平比TR1活性更好地预测了Trx1的氧化还原状态。在第3章中,我们使用姜黄素和1,2-氯二硝基苯(CDNB)(TR1的两种抑制剂)探讨了硫氧还蛋白系统与NFkappaB活性之间的关系。数据表明,肿瘤坏死因子-α(TNFalpha)诱导的核内NFkappaB活性可能被两种化学TR1抑制剂完全阻断。出人意料的是,这种NFkappaB抑制作用不是由NFkappaB的DNA结合结构域的氧化介导的,这表明TR1通过其调节NFkappaB的另一种机制。基于第2章和第3章中提出的发现,在第4章中使用基于siRNA的方法阐明了TR1和Trx1对NFkappaB调节的相对贡献。在没有Trx1氧化或ROS生成增加的情况下,敲低TR1会导致TNFalpha刺激的NFkappaB活性降低,而敲低Trx1对NFkappaB活性没有影响。综上所述,此处报道的研究提供了支持TR1调节NFkappaB的新型Trx1独立机制的证据。

著录项

  • 作者

    Heilman, Jacqueline M.;

  • 作者单位

    The Johns Hopkins University.;

  • 授予单位 The Johns Hopkins University.;
  • 学科 Health Sciences Toxicology.;Health Sciences Pharmacology.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 123 p.
  • 总页数 123
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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