化学
衣壳
HEK 293细胞
泛素连接酶
DNA连接酶
突变体
抗药性
药品
细胞生物学
效力
嵌合体(遗传学)
药理学
降级(电信)
配体(生物化学)
毒性
药物发现
病毒
细胞培养
生物化学
结构-活动关系
体外
人类免疫缺陷病毒(HIV)
泛素
病毒学
高电阻
蛋白酶体
药物开发
作用机理
生物物理学
转染
计算生物学
慢病毒
机制(生物学)
分子生物学
血浆蛋白结合
作者
Mei Wang,Zeyu Peng,Yi Zhou,Yuexi Ma,Jiacheng Gui,Shujing Xu,Xiangyi Jiang,Tianyu Tang,Xinyong Liu,Christophe Pannecouque,Lu Xue,Xiaoli Xiong,Ke Tang,Guochao Wei,Peng Zhan
标识
DOI:10.1021/acs.jmedchem.6c00553
摘要
The escalating prevalence of HIV-1 drug-resistant variants and the toxicity limitations of conventional antiretroviral therapies necessitate therapeutic strategies with novel mechanisms of action. This study focuses on HIV-1 capsid (CA), an essential replication-related viral protein. We developed CA-targeted proteolysis-targeting chimera (PROTAC) degraders by conjugating PF74-derived CA ligand IIA-4 with VHL E3 ligase ligand. Among these, VHL - 3 exhibited potent anti-HIV-1 activity in MT-4 cells (EC 50 = 3.0 ± 1.5 nM), a 300-fold improvement over PF74. Mechanistic studies confirmed VHL-3 dose- and time-dependently reduced CA levels in HEK293T cells (early stage, DC 50 = 812 nM; late stage, DC 50 = 252 nM) via a proteasome-driven pathway. Notably, it effectively degraded clinically relevant CA-resistant mutants (N74D, K70R). This work pioneers the development of CA-targeted degraders, providing a framework for next-generation anti-HIV therapies with high potency and resistance barriers.
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