药物发现
共价键
化学
小分子
计算生物学
半胱氨酸
化学生物学
药品
泛素连接酶
组合化学
生物化学
免疫沉淀
仿形(计算机编程)
血浆蛋白结合
DNA连接酶
靶蛋白
配体(生物化学)
电泳剂
药物靶点
蛋白质组学
共价结合
蛋白质降解
结合位点
蛋白质配体
虚拟筛选
泛素
HEK 293细胞
纳米技术
药物开发
残留物(化学)
质谱法
酶
生物
作者
Kevin D. Dong,Qing Yu,Ka Yang,Bertrand J. Wong,Hong Yue,Sipei Fu,Rebecca L. Whitehouse,Eric S. Fischer,Steven P. Gygi,Kevin D. Dong,Qing Yu,Ka Yang,Bertrand J. Wong,Hong Yue,Sipei Fu,Rebecca L. Whitehouse,Eric S. Fischer,Steven P. Gygi
标识
DOI:10.1021/acschembio.5c00581
摘要
Live-cell activity-based protein profiling (ABPP) with mass spectrometry enables the proteome-wide quantification of compound reactivity, yet resulting datasets often suffer from low data completeness for high-priority targets and do not give users the option to measure compound-induced protein changes within the same screening assay. To address these limitations, we developed CysDig, an enrichment-free chemoproteomics platform for the targeted covalent drug discovery in live cells. Using the CysDig platform, we screened 288 cysteine-reactive electrophiles against 300 functionally annotated cysteine sites. From this screen, we identified covalent binders that liganded dozens of sites and identified multiple instances of acute compound-induced protein degradation of ACAT1. We validated a molecule that engaged with the active site of HECT E3 ligase HUWE1 and showed that chemical inhibition stabilized known substrates. Together, these findings establish CysDig as a powerful, targeted platform for live-cell covalent drug screening, expanding the current repertoire of available approaches for ligand discovery in live cells.
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