化学
蛋白质水解
泛素连接酶
小脑
泛素
细胞生物学
癌症研究
蛋白质降解
缺氧诱导因子
BRD4
KEAP1型
DNA连接酶
平方毫米
蛋白酶体
劈理(地质)
药品
药物开发
生物化学
靶蛋白
药物发现
综合应力响应
细胞
化学生物学
药理学
HEK 293细胞
蛋白质生物合成
癌细胞
降级(电信)
作者
M. Teresa Serafini,Sophie A. Twigger,George Delfas,Maxim Mallerman,Elliot P. Bailey,Ewen D. D. Calder,Ester M. Hammond,Stuart J. Conway
摘要
Proteolysis targeting chimeras (PROTACs) have helped to establish proximity induction as an exciting strategy in drug discovery, and there are multiple clinical trials focused on this modality. However, degradation of a full protein in a physiological setting might lead to dose-limiting toxicities, giving rise to the need for PROTACs that are activated in a context-dependent nature. Here, we report the development of hypoxia-activated PROTACs (HAP-TACs) which are selectively activated in conditions of low oxygen (hypoxia) such as those found in solid tumors. To develop HAP-TACs, we have attached an indolequinone bioreductive group to an essential functional group of either the VHL- or cereblon-recruiting component of the PROTAC, reducing affinity for its cognate E3 ligase and preventing degradation of the protein of interest. Using BRD4, we have conducted proof-of-concept studies which demonstrate that the indolequinone group is bioreduced under hypoxic conditions, releasing the active PROTAC, resulting in selective degradation of BRD4 in hypoxia. As the bioreductive group is attached to the VHL or cereblon ligand, this approach is potentially applicable to all PROTACs that recruit these commonly employed E3 ligases.
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