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Discovery and Molecular Basis of a Diverse Set of Polycomb Repressive Complex 2 Inhibitors Recognition by EED

机译:EED识别不同类型的多梳抑制复合物2抑制剂的发现和分子基础

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摘要

Polycomb repressive complex 2 (PRC2), a histone H3 lysine 27 methyltransferase, plays a key role in gene regulation and is a known epigenetics drug target for cancer therapy. The WD40 domain-containing protein EED is the regulatory subunit of PRC2. It binds to the tri-methylated lysine 27 of the histone H3 (H3K27me3), and through which stimulates the activity of PRC2 allosterically. Recently, we disclosed a novel PRC2 inhibitor EED226 which binds to the K27me3-pocket on EED and showed strong antitumor activity in xenograft mice model. Here, we further report the identification and validation of four other EED binders along with EED162, the parental compound of EED226. The crystal structures for all these five compounds in complex with EED revealed a common deep pocket induced by the binding of this diverse set of compounds. This pocket was created after significant conformational rearrangement of the aromatic cage residues (Y365, Y148 and F97) in the H3K27me3 binding pocket of EED, the width of which was delineated by the side chains of these rearranged residues. In addition, all five compounds interact with the Arg367 at the bottom of the pocket. Each compound also displays unique features in its interaction with EED, suggesting the dynamics of the H3K27me3 pocket in accommodating the binding of different compounds. Our results provide structural insights for rational design of novel EED binder for the inhibition of PRC2 complex activity.
机译:聚梳抑制复合物2(PRC2),一种组蛋白H3赖氨酸27甲基转移酶,在基因调控中起关键作用,并且是癌症治疗的已知表观遗传学药物靶标。包含WD40域的蛋白质EED是PRC2的调节亚基。它与组蛋白H3(H3K27me3)的三甲基赖氨酸27结合,并通过其刺激变构的PRC2活性。最近,我们公开了一种新型的PRC2抑制剂EED226,该EED226与EED上的K27me3-pocket结合并在异种移植小鼠模型中显示出强大的抗肿瘤活性。在这里,我们进一步报告了其他四种EED结合剂以及EED226的母体化合物EED162的鉴定和验证。所有这五种化合物与EED配合使用的晶体结构都揭示出,由于这些化合物的不同结合而引起的一个共同的深坑。该口袋是在EED的H3K27me3结合口袋中的芳香族笼状残基(Y365,Y148和F97)进行显着的构象重排后形成的,其宽度由这些重排的残基的侧链描绘。此外,所有五种化合物均与口袋底部的Arg367相互作用。每种化合物在与EED的相互作用中也表现出独特的功能,这暗示了H3K27me3口袋在适应不同化合物结合方面的动力学。我们的结果提供了结构上的见解,以合理设计新型的抑制EPR2活性的EED粘合剂。

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