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EED结合物的结构导向设计变构抑制表观遗传多梳抑制复合物2(PRC2)甲基转移酶

Structure-Guided Design of EED Binders Allosterically Inhibiting the Epigenetic Polycomb Repressive Complex 2 (PRC2) Methyltransferase.

作者信息

Lingel Andreas, Sendzik Martin, Huang Ying, Shultz Michael D, Cantwell John, Dillon Michael P, Fu Xingnian, Fuller John, Gabriel Tobias, Gu Justin, Jiang Xiangqing, Li Ling, Liang Fang, McKenna Maureen, Qi Wei, Rao Weijun, Sheng Xijun, Shu Wei, Sutton James, Taft Benjamin, Wang Long, Zeng Jue, Zhang Hailong, Zhang Maya, Zhao Kehao, Lindvall Mika, Bussiere Dirksen E

机构信息

Novartis Institutes for BioMedical Research , 5300 Chiron Way, Emeryville, California 94608, United States.

Novartis Institutes for BioMedical Research , 2418 Jinke Road, Shanghai 201203, China.

出版信息

J Med Chem. 2017 Jan 12;60(1):415-427. doi: 10.1021/acs.jmedchem.6b01473. Epub 2017 Jan 3.

Abstract

PRC2 is a multisubunit methyltransferase involved in epigenetic regulation of early embryonic development and cell growth. The catalytic subunit EZH2 methylates primarily lysine 27 of histone H3, leading to chromatin compaction and repression of tumor suppressor genes. Inhibiting this activity by small molecules targeting EZH2 was shown to result in antitumor efficacy. Here, we describe the optimization of a chemical series representing a new class of PRC2 inhibitors which acts allosterically via the trimethyllysine pocket of the noncatalytic EED subunit. Deconstruction of a larger and complex screening hit to a simple fragment-sized molecule followed by structure-guided regrowth and careful property modulation were employed to yield compounds which achieve submicromolar inhibition in functional assays and cellular activity. The resulting molecules can serve as a simplified entry point for lead optimization and can be utilized to study this new mechanism of PRC2 inhibition and the associated biology in detail.

摘要

PRC2是一种多亚基甲基转移酶,参与早期胚胎发育和细胞生长的表观遗传调控。催化亚基EZH2主要使组蛋白H3的赖氨酸27甲基化,导致染色质压缩和肿瘤抑制基因的抑制。通过靶向EZH2的小分子抑制这种活性已显示出抗肿瘤疗效。在此,我们描述了一类新型PRC2抑制剂化学系列的优化,该系列通过非催化EED亚基的三甲基赖氨酸口袋进行变构作用。将一个更大、更复杂的筛选命中物解构为一个简单的片段大小的分子,然后进行结构导向的生长和仔细的性质调节,以产生在功能测定和细胞活性中实现亚微摩尔抑制的化合物。所得分子可作为先导优化的简化切入点,并可用于详细研究这种PRC2抑制的新机制及相关生物学。

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