连接器
点击化学
三元络合物
化学
组合化学
计算生物学
模块化设计
泛素连接酶
三元运算
DNA连接酶
变构调节
管道(软件)
合作性
立体化学
计算机科学
合理设计
生物化学
蛋白质降解
索福斯布维尔
分子机器
降级(电信)
核酸
泛素
分子动力学
生物物理学
聚合酶
药物发现
生物
蛋白质工程
理论(学习稳定性)
对接(动物)
作者
Kiran Shehzadi (4953538),Yue Ran (8260242),Iqra Kalsoom (20714375),Jingyue Dong (12226340),Peifeng Gao (14308331),Irfan Muhammad (5518136),Ming-Jia Yu (6594224),Zihui Meng (1746217),Jian-Hua Liang (9704522)
标识
DOI:10.1021/acs.jmedchem.5c02065.s004
摘要
Targeted protein degradation via PROTACs holds promise for antiviral therapy but is challenged by inefficient ternary complex formation. We report the de novo design of PROTACs targeting the SARS-CoV-2 RNA-dependent RNA polymerase (RdRp). Leveraging repurposed antiviral scaffolds and optimizing E3 ligase ligands, we designed and screened 600 candidates. Our integrated pipeline identified PROTAC 10, a molnupiravir-CRBN conjugate, which demonstrated high-affinity binding (Kd = 1.09 nM), pronounced positive cooperativity (α = 45.9), and effective CRBN-mediated RdRp degradation (DC50 = 1.97 μM) in infected cells. PROTAC 10 was synthesized by using modular click chemistry (CuAAC), strategically incorporating a central triazole ring flanked by flexible alkyl spacers. It exhibited potent antiviral activity (IC50 = 3.12 μM). Molecular dynamics simulations revealed that its engineered linker enhances cooperativity, ternary complex stability (ΔGTER = −247 kcal/mol), and chameleonic character. This study provides a strategic framework to design antiviral PROTACs through rational linker optimization that enables selective viral protein degradation.
科研通智能强力驱动
Strongly Powered by AbleSci AI