化学
药物发现
计算生物学
结构-活动关系
双环分子
效力
药理学
生物化学
立体化学
体外
生物
作者
Kevin B. Teuscher,Jonathan J. Mills,Jianhua Tian,Changho Han,Kenneth M. Meyers,Jiqing Sai,Taylor M. South,Mackenzie M. Crow,Mayme Van Meveren,John Sensintaffar,Bin Zhao,Kangsa Amporndanai,William Moore,Gordon M. Stott,William P. Tansey,Taekyu Lee,Stephen W. Fesik
标识
DOI:10.1021/acs.jmedchem.3c01529
摘要
The chromatin-associated protein WDR5 (WD repeat domain 5) is an essential cofactor for MYC and a conserved regulator of ribosome protein gene transcription. It is also a high-profile target for anti-cancer drug discovery, with proposed utility against both solid and hematological malignancies. We have previously discovered potent dihydroisoquinolinone-based WDR5 WIN-site inhibitors with demonstrated efficacy and safety in animal models. In this study, we sought to optimize the bicyclic core to discover a novel series of WDR5 WIN-site inhibitors with improved potency and physicochemical properties. We identified the 3,4-dihydrobenzo[f][1,4]oxazepin-5(2H)-one core as an alternative scaffold for potent WDR5 inhibitors. Additionally, we used X-ray structural analysis to design partially saturated bicyclic P7 units. These benzoxazepinone-based inhibitors exhibited increased cellular potency and selectivity and favorable physicochemical properties compared to our best-in-class dihydroisoquinolinone-based counterparts. This study opens avenues to discover more advanced WDR5 WIN-site inhibitors and supports their development as novel anti-cancer therapeutics.
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