Wang Yulan, Li Linjuan, Zhang Bidong, Xing Jing, Chen Shijie, Wan Wei, Song Yakai, Jiang Hao, Jiang Hualiang, Luo Cheng, Zheng Mingyue
State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences , 555 Zuchongzhi Road, Shanghai 201203, China.
State Key Laboratory of Natural and Biomimetic Drugs, Peking University , Beijing 100191, China.
J Med Chem. 2017 Mar 9;60(5):2026-2036. doi: 10.1021/acs.jmedchem.6b01785. Epub 2017 Feb 21.
The disruptor of telomeric silencing 1-like (DOT1L) protein is a histone H3K79 methyltransferase that plays a key role in transcriptional elongation and cell cycle regulation and is required for the development and maintenance of MLL-rearranged mixed lineage leukemia. Much effort has been dedicated toward discovering novel scaffold DOT1L inhibitors using different strategies. Here, we report the development and application of a target-specific scoring function, the SAM score, for (S)-adenosyl-l-methionine (SAM)-dependent methyltransferases, for the discovery of novel DOT1L inhibitors. On the basis of the SAM score, we successfully identified a novel class of DOT1L inhibitors with a scaffold of [1,2,4]-triazolo-[3,4-b][1,3,4]-thiadiazole, in which compound 6 exhibits an IC value of 8.3 μM with selectivity versus other tested SAM-dependent methyltransferases. In cellular studies, 6 selectively targets DOT1L, blocks the proliferation of mixed lineage leukemia cell lines, and causes cell cycle arrest and apoptosis. Moreover, we analyzed the putative binding modes of 6 and its analogues obtained by molecular docking, which may assist with the future development of DOT1L inhibitors with improved potency and selectivity profiles.
端粒沉默破坏因子1样(DOT1L)蛋白是一种组蛋白H3K79甲基转移酶,在转录延伸和细胞周期调控中起关键作用,是MLL重排混合谱系白血病发生和维持所必需的。人们已经投入了大量精力,使用不同策略来发现新型支架DOT1L抑制剂。在此,我们报告了一种针对(S)-腺苷-L-甲硫氨酸(SAM)依赖性甲基转移酶的靶标特异性评分函数——SAM评分的开发和应用,用于发现新型DOT1L抑制剂。基于SAM评分,我们成功鉴定出一类新型的以[1,2,4]-三唑并-[3,4-b][1,3,4]-噻二唑为支架的DOT1L抑制剂,其中化合物6对其他测试的SAM依赖性甲基转移酶具有选择性,IC值为8.3 μM。在细胞研究中,化合物6选择性靶向DOT1L,阻断混合谱系白血病细胞系的增殖,并导致细胞周期停滞和凋亡。此外,我们分析了通过分子对接获得的化合物6及其类似物的推定结合模式,这可能有助于未来开发具有更高效力和选择性的DOT1L抑制剂。