1,3,5-Triazine as a Modular Scaffold for Covalent Inhibitors with Streamlined Target Identification

化学 生物正交化学 蛋白质组 小分子 共价键 点击化学 三嗪 电泳剂 组合化学 靶蛋白 计算生物学 半胱氨酸 脚手架 蛋白质-蛋白质相互作用 生物化学 药物发现 生物 基因 生物医学工程 催化作用 有机化学 医学 高分子化学
作者
Ranjan Banerjee,Nicholas J. Pace,Douglas Brown,Eranthie Weerapana
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:135 (7): 2497-2500 被引量:101
标识
DOI:10.1021/ja400427e
摘要

Small-molecule inhibitors can accelerate the functional annotation and validate the therapeutic potential of proteins implicated in disease. Phenotypic screens provide an effective platform to identify such pharmacological agents but are often hindered by challenges associated with target identification. For many protein targets, these bottlenecks can be overcome by incorporating electrophiles into small molecules to covalently trap interactions in vivo and by employing bioorthogonal handles to enrich the protein targets directly from a complex proteome. Here we present the trifunctionalized 1,3,5-triazine as an ideal modular scaffold for generating libraries of irreversible inhibitors with diverse target specificities. A divergent synthetic scheme was developed to derivatize the triazine with an electrophile for covalent modification of target proteins, an alkyne as a click-chemistry handle for target identification, and a diversity element to direct the compounds toward distinct subsets of the proteome. We specifically targeted our initial library toward cysteine-mediated protein activities through incorporation of thiol-specific electrophiles. From this initial screen we identified two compounds, RB-2-cb and RB-11-ca, which are cell permeable and highly selective covalent modifiers for Cys239 of β-tubulin (TUBB) and Cys53 of protein disulfide isomerase (PDI) respectively. These compounds demonstrate in vitro and cellular potencies that are comparable to currently available modulators of tubulin polymerization and PDI activity. Our studies demonstrate the versatility of the triazine as a modular scaffold to generate potent and selective covalent modifiers of diverse protein families for chemical genetics applications.
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