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Glucocorticoids repress NF-kappaB-driven genes by disturbing the interaction of p65 with the basal transcription machinery, irrespective of coactivator levels in the cell.糖皮质激素通过干扰p65与基础转录机制的相互作用来抑制NF-κB驱动的基因,而与细胞中的共激活因子水平无关。
Proc Natl Acad Sci U S A. 2000 Apr 11;97(8):3919-24. doi: 10.1073/pnas.97.8.3919.
2
Dissociated glucocorticoids with anti-inflammatory potential repress interleukin-6 gene expression by a nuclear factor-kappaB-dependent mechanism.具有抗炎潜力的解离型糖皮质激素通过核因子κB依赖性机制抑制白细胞介素-6基因表达。
Mol Pharmacol. 1999 Oct;56(4):797-806.
3
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Glucocorticoid repression of AP-1 is not mediated by competition for nuclear coactivators.糖皮质激素对AP-1的抑制作用并非通过与核共激活因子竞争介导。
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Nuclear factor-kappaB and cAMP response element binding protein mediate opposite transcriptional effects on the Flk-1/KDR gene promoter.核因子-κB和环磷酸腺苷反应元件结合蛋白对Flk-1/KDR基因启动子介导相反的转录效应。
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本文引用的文献

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The nuclear factor-kappaB engages CBP/p300 and histone acetyltransferase activity for transcriptional activation of the interleukin-6 gene promoter.核因子-κB通过结合CBP/p300并发挥组蛋白乙酰转移酶活性来实现白细胞介素-6基因启动子的转录激活。
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Dissociated glucocorticoids with anti-inflammatory potential repress interleukin-6 gene expression by a nuclear factor-kappaB-dependent mechanism.具有抗炎潜力的解离型糖皮质激素通过核因子κB依赖性机制抑制白细胞介素-6基因表达。
Mol Pharmacol. 1999 Oct;56(4):797-806.
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Multiple signals converging on NF-kappaB.多种信号汇聚于核因子-κB
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Nuclear integration of glucocorticoid receptor and nuclear factor-kappaB signaling by CREB-binding protein and steroid receptor coactivator-1.通过 CREB 结合蛋白和类固醇受体辅激活因子-1实现糖皮质激素受体与核因子-κB信号通路的核整合。
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p300/CREB-binding protein enhances the prolactin-mediated transcriptional induction through direct interaction with the transactivation domain of Stat5, but does not participate in the Stat5-mediated suppression of the glucocorticoid response.p300/CREB结合蛋白通过与Stat5的反式激活结构域直接相互作用增强催乳素介导的转录诱导,但不参与Stat5介导的糖皮质激素反应抑制。
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Transcriptional activators direct histone acetyltransferase complexes to nucleosomes.转录激活因子将组蛋白乙酰转移酶复合物导向核小体。
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10
Phosphorylation of NF-kappa B p65 by PKA stimulates transcriptional activity by promoting a novel bivalent interaction with the coactivator CBP/p300.蛋白激酶A对核因子-κB p65的磷酸化通过促进与共激活因子CBP/p300的新型二价相互作用来刺激转录活性。
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糖皮质激素通过干扰p65与基础转录机制的相互作用来抑制NF-κB驱动的基因,而与细胞中的共激活因子水平无关。

Glucocorticoids repress NF-kappaB-driven genes by disturbing the interaction of p65 with the basal transcription machinery, irrespective of coactivator levels in the cell.

作者信息

De Bosscher K, Vanden Berghe W, Vermeulen L, Plaisance S, Boone E, Haegeman G

机构信息

Department of Molecular Biology, Flanders Interuniversity Institute for Biotechnology and University of Gent, K. L. Ledeganckstraat 35, 9000 Gent, Belgium.

出版信息

Proc Natl Acad Sci U S A. 2000 Apr 11;97(8):3919-24. doi: 10.1073/pnas.97.8.3919.

DOI:10.1073/pnas.97.8.3919
PMID:10760263
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC18117/
Abstract

Glucocorticoids (GCs) are used to combat inflammatory diseases. Their beneficial effect relies mainly on the inhibition of NF-kappaB- and/or AP-1-driven proinflammatory gene expression. Previously, we have shown that GCs repress tumor necrosis factor-induced IL-6 gene expression by an NF-kappaB-dependent nuclear mechanism without changing the DNA-binding capacity of NF-kappaB or the expression levels of the cytoplasmic inhibitor of NF-kappaB (IkappaB-alpha). In the present work, we investigate the effect of GC repression on different natural and/or recombinant NF-kappaB-driven reporter gene constructs in the presence of increasing amounts of various coactivator molecules, such as CREB-binding protein (CBP), p300, and SRC-1. We found that GCs maintain their repressive capacities, irrespective of the amount of cofactor present in the cell. Similar results were obtained for the reciprocal transrepression of a GC receptor (GR) element-driven reporter gene by p65. We demonstrate that neither the expression levels of p65 and CBP nor their physical association are affected by activated GR. Using Gal4 chimeras, we show that repression by GCs is specific for p65-mediated transactivation, ruling out competition for limiting nuclear factors as the major underlying mechanism of gene repression. In addition, the transactivation potential of a point-mutated Gal4-p65 variant with a decreased CBP interaction capability is still repressed by GR. Finally, we present evidence that the specificity of GC repression on p65-driven gene expression is codetermined by the TATA box context.

摘要

糖皮质激素(GCs)被用于对抗炎症性疾病。它们的有益作用主要依赖于对核因子κB(NF-κB)和/或激活蛋白-1(AP-1)驱动的促炎基因表达的抑制。此前,我们已经表明,GCs通过一种依赖NF-κB的核机制抑制肿瘤坏死因子诱导的白细胞介素-6基因表达,而不改变NF-κB的DNA结合能力或NF-κB胞质抑制剂(IκB-α)的表达水平。在本研究中,我们研究了在存在越来越多的各种共激活分子(如CREB结合蛋白(CBP)、p300和类固醇受体辅激活因子-1(SRC-1))的情况下,GC抑制对不同天然和/或重组NF-κB驱动的报告基因构建体的影响。我们发现,无论细胞中存在的辅因子数量如何,GCs都能保持其抑制能力。对于p65对GC受体(GR)元件驱动的报告基因的反向反式抑制,也获得了类似的结果。我们证明,激活的GR既不影响p65和CBP的表达水平,也不影响它们的物理结合。使用Gal4嵌合体,我们表明GCs的抑制作用对p65介导的反式激活具有特异性,排除了对有限核因子的竞争作为基因抑制的主要潜在机制。此外,GR仍然能抑制与CBP相互作用能力降低的点突变Gal4-p65变体的反式激活潜力。最后,我们提供证据表明,GC对p65驱动的基因表达的抑制特异性是由TATA框背景共同决定的。