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组蛋白去甲基化酶KDM5B与三羧酸循环中间体相互作用的研究

Studies on the Interaction of the Histone Demethylase KDM5B with Tricarboxylic Acid Cycle Intermediates.

作者信息

Tarhonskaya Hanna, Nowak Radosław P, Johansson Catrine, Szykowska Aleksandra, Tumber Anthony, Hancock Rebecca L, Lang Pauline, Flashman Emily, Oppermann Udo, Schofield Christopher J, Kawamura Akane

机构信息

Chemistry Research Laboratory, Department of Chemistry, University of Oxford, 12 Mansfield Road, Oxford, OX1 3TA, United Kingdom.

Structural Genomic Consortium, University of Oxford, Old Road Campus, Roosevelt Drive, Oxford, OX3 7DQ, United Kingdom.

出版信息

J Mol Biol. 2017 Sep 15;429(19):2895-2906. doi: 10.1016/j.jmb.2017.08.007. Epub 2017 Aug 18.

Abstract

Methylation of lysine-4 of histone H3 (H3K4me) is an important regulatory factor in eukaryotic transcription. Removal of the transcriptionally activating H3K4 methylation is catalyzed by histone demethylases, including the Jumonji C (JmjC) KDM5 subfamily. The JmjC KDMs are Fe(II) and 2-oxoglutarate (2OG)-dependent oxygenases, some of which are associated with cancer. Altered levels of tricarboxylic acid (TCA) cycle intermediates and the associated metabolites D- and L-2-hydroxyglutarate (2HG) can cause changes in chromatin methylation status. We report comprehensive biochemical, structural and cellular studies on the interaction of TCA cycle intermediates with KDM5B, which is a current medicinal chemistry target for cancer. The tested TCA intermediates were poor or moderate KDM5B inhibitors, except for oxaloacetate and succinate, which were shown to compete for binding with 2OG. D- and L-2HG were moderate inhibitors at levels that might be relevant in cancer cells bearing isocitrate dehydrogenase mutations. Crystallographic analyses with succinate, fumarate, L-malate, oxaloacetate, pyruvate and D- and L-2HG support the kinetic studies showing competition with 2OG. An unexpected binding mode for oxaloacetate was observed in which it coordinates the active site metal via its C-4 carboxylate rather than the C-1 carboxylate/C-2 keto groups. Studies employing immunofluorescence antibody-based assays reveal no changes in H3K4me levels in cells ectopically overexpressing KDM5B in response to dosing with TCA cycle metabolite pro-drug esters, suggesting that the high levels of cellular 2OG may preclude inhibition. The combined results reveal the potential for KDM5B inhibition by TCA cycle intermediates, but suggest that in cells, such inhibition will normally be effectively competed by 2OG.

摘要

组蛋白H3赖氨酸-4(H3K4me)的甲基化是真核生物转录中的一个重要调控因子。转录激活型H3K4甲基化的去除由组蛋白去甲基化酶催化,包括Jumonji C(JmjC)KDM5亚家族。JmjC KDMs是依赖Fe(II)和2-氧代戊二酸(2OG)的加氧酶,其中一些与癌症有关。三羧酸(TCA)循环中间体以及相关代谢物D-和L-2-羟基戊二酸(2HG)水平的改变可导致染色质甲基化状态的变化。我们报告了关于TCA循环中间体与KDM5B相互作用的全面生化、结构和细胞研究,KDM5B是目前癌症药物化学的一个靶点。除草酰乙酸和琥珀酸外,所测试的TCA中间体是较差或中等的KDM5B抑制剂,草酰乙酸和琥珀酸显示出与2OG竞争结合。D-和L-2HG在携带异柠檬酸脱氢酶突变的癌细胞中可能相关的水平下是中等抑制剂。用琥珀酸、富马酸、L-苹果酸、草酰乙酸、丙酮酸以及D-和L-2HG进行的晶体学分析支持了与2OG竞争的动力学研究。观察到草酰乙酸一种意外的结合模式,即它通过其C-4羧酸盐而非C-1羧酸盐/C-2酮基配位活性位点金属。采用基于免疫荧光抗体的分析的研究表明,在用TCA循环代谢物前药酯给药后,异位过表达KDM5B的细胞中H3K4me水平没有变化,这表明细胞内高水平的2OG可能会阻止抑制作用。综合结果揭示了TCA循环中间体抑制KDM5B的潜力,但表明在细胞中,这种抑制通常会被2OG有效竞争。

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