化学
合理设计
细胞毒性
对接(动物)
代谢稳定性
酶
分子模型
突变体
药物设计
计算生物学
组合化学
铅化合物
立体化学
结构-活动关系
逆转录酶
训练集
生物化学
利比韦林
整合酶
药物发现
体外
数量结构-活动关系
化学合成
药代动力学
生物活性
药理学
核苷酸转移酶
酶抑制剂
药品
效力
李宾斯基五定律
细胞培养
苯衍生物
作者
Xinliang Zhang,Yuhan Lin,Ling Dong,Yuting Niu,Jian Peng,Christophe Pannecouque,Erik De Clercq,Phuong-Thao Tran,Guobo Li,Tiancong Zhao,Xudong Li,Shuo Su,Shuai Wang,Fen‐Er Chen
标识
DOI:10.1021/acs.jmedchem.6c00048
摘要
Guided by the pharmacophore-oriented molecular generation platform PhoreGen, we employed rilpivirine (RPV) as a lead compound to generate 300 structurally diverse analogs that preserve key pharmacophoric features. Subsequent drug-likeness evaluation, molecular docking score, and synthetic feasibility led to the identification of compound No.102 (A19), which displayed potent inhibition activity against WT HIV-1 (EC50 = 3.15 nM) and low cytotoxicity (CC50 > 335 μM). Subsequent structure-activity relationship optimization identified A24, which demonstrated robust activity against clinically relevant drug-resistant HIV-1 mutants (EC50 = 2.07-28.8 nM). Notably, compared to RPV, A24 exhibited significantly reduced cytotoxicity (CC50 = 82.3 μM vs. 3.98 μM) and enhanced potency against the Y188L (EC50 = 28.8 nM vs. 79.4 nM) and F227L + V106A (EC50 = 19.0 nM vs. 81.6 nM) mutants. Pharmacokinetic evaluations revealed that A24 exhibited attenuated CYP enzyme inhibition (IC50 ≥ 1.88 μM), reduced hERG-related toxicity (IC50 = 2.633 μM), and improved metabolic stability (human t1/2 = 39.1 min). Collectively, these favorable properties position A24 as a promising NNRTI for further development.
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