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结构和热力学表征异甘草素与 BRD4 第一溴结构域的结合。

Structural and thermodynamic characterization of the binding of isoliquiritigenin to the first bromodomain of BRD4.

机构信息

Faculty of Pharmaceutical Sciences, University of Toyama, Japan.

Heinz Maier-Leibnitz Zentrum (MLZ), Technische Universtät München, Garching, Germany.

出版信息

FEBS J. 2019 May;286(9):1656-1667. doi: 10.1111/febs.14736. Epub 2019 Jan 10.

Abstract

Bromodomain-containing protein 4 (BRD4) recognizes the acetylated lysine of histone H4 via its bromodomains, leading to the recruitment of positive transcription elongation factor b. Small molecules that inhibit BRD4 have potential as anticancer agents by leading to the downregulation of specific oncogenes. Using X-ray crystallographic screening, we identified the BRD4 inhibitory activity of isoliquiritigenin (ISL), a natural chalcone found in licorice. Structural analysis revealed that ISL bound to BRD4 with a novel binding mode and squeezed out one of the six conserved water molecules that form a strong hydrogen bond network. The thermodynamic analysis revealed that the binding of ISL is enthalpy driven, suggesting that strong hydrogen bonds would compensate for the desolvation penalty. Neutron protein crystallography further suggested that the favorable binding enthalpy originates from the stabilization and optimization of the hydrogen bond network of the conserved water molecules. Here, we describe the novelty and potential of ISL as a template for new BRD4 inhibitors.

摘要

溴结构域蛋白 4(BRD4)通过其溴结构域识别组蛋白 H4 的乙酰化赖氨酸,从而募集正转录伸长因子 b。通过下调特定的癌基因,抑制 BRD4 的小分子有望成为抗癌药物。我们通过 X 射线晶体筛选,发现了甘草中的天然查尔酮异甘草素(ISL)对 BRD4 的抑制活性。结构分析表明,ISL 以一种新的结合模式与 BRD4 结合,并挤出形成强氢键网络的六个保守水分子之一。热力学分析表明,ISL 的结合是焓驱动的,这表明强氢键可以弥补去溶剂化的惩罚。中子蛋白晶体学进一步表明,有利的结合焓源于保守水分子氢键网络的稳定和优化。在这里,我们描述了 ISL 的新颖性和作为新型 BRD4 抑制剂模板的潜力。

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