溴尿嘧啶
化学
对接(动物)
生物物理学
小分子
选择性
合理设计
蛋白质-蛋白质相互作用
配体(生物化学)
生物化学
血浆蛋白结合
纳米技术
生物
DNA
组蛋白
材料科学
受体
医学
护理部
催化作用
作者
Radosław P. Nowak,Stephen L. DeAngelo,Dennis L. Buckley,Zhixiang He,Katherine A. Donovan,Jian An,Nozhat Safaee,Mark P. Jedrychowski,Charles M. Ponthier,Mette Ishoey,Tinghu Zhang,Joseph D. Mancias,Nathanael S. Gray,James E. Bradner,Eric S. Fischer
标识
DOI:10.1038/s41589-018-0055-y
摘要
Heterobifunctional small-molecule degraders that induce protein degradation through ligase-mediated ubiquitination have shown considerable promise as a new pharmacological modality. However, we currently lack a detailed understanding of the molecular basis for target recruitment and selectivity, which is critically required to enable rational design of degraders. Here we utilize a comprehensive characterization of the ligand-dependent CRBN–BRD4 interaction to demonstrate that binding between proteins that have not evolved to interact is plastic. Multiple X-ray crystal structures show that plasticity results in several distinct low-energy binding conformations that are selectively bound by ligands. We demonstrate that computational protein–protein docking can reveal the underlying interprotein contacts and inform the design of a BRD4 selective degrader that can discriminate between highly homologous BET bromodomains. Our findings that plastic interprotein contacts confer selectivity for ligand-induced protein dimerization provide a conceptual framework for the development of heterobifunctional ligands. Selectivity of ligand-induced protein degradation and dimerization is conferred by plastic interprotein contacts. Computational protein–protein docking reveals the underlying interprotein contacts to inform the design of a BRD4 selective degrader.
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