化学
渗透剂(生化)
药物发现
体内
海因
体外
药理学
生物化学
有机化学
医学
生物
生物技术
作者
Ruth Dorel,Dawei Sun,Nicholas I. Carruthers,Georgette M. Castanedo,Peter M.U. Ung,Daniel C. Factor,Tianbo Li,Hannah M. Baumann,Danielle Janota,Jodie Pang,Laurent Salphati,Robert Meklemburg,Allison J. Korman,H. Harper,Samantha R. Stubblefield,Jian Payandeh,Daniel Mchugh,Bradley T. Lang,Paul J. Tesar,Edward Dere
标识
DOI:10.1021/acs.jmedchem.3c02396
摘要
The inhibition of emopamil binding protein (EBP), a sterol isomerase within the cholesterol biosynthesis pathway, promotes oligodendrocyte formation, which has been proposed as a potential therapeutic approach for treating multiple sclerosis. Herein, we describe the discovery and optimization of brain-penetrant, orally bioavailable inhibitors of EBP. A structure-based drug design approach from literature compound 1 led to the discovery of a hydantoin-based scaffold, which provided balanced physicochemical properties and potency and an improved in vitro safety profile. The long half-lives of early hydantoin-based EBP inhibitors in rodents prompted an unconventional optimization strategy, focused on increasing metabolic turnover while maintaining potency and a brain-penetrant profile. The resulting EBP inhibitor 11 demonstrated strong in vivo target engagement in the brain, as illustrated by the accumulation of EBP substrate zymostenol after repeated dosing. Furthermore, compound 11 enhanced the formation of oligodendrocytes in human cortical organoids, providing additional support for our therapeutic hypothesis.
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