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发现针对 150 腔的高活性和选择性流感病毒神经氨酸酶抑制剂。

Discovery of highly potent and selective influenza virus neuraminidase inhibitors targeting 150-cavity.

机构信息

Department of Medicinal Chemistry, Key Laboratory of Chemical Biology (Ministry of Education), School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University, 44 West Culture Road, 250012, Jinan, Shandong, PR China.

Institute of Medical Sciences, The Second Hospital, Cheeloo College of Medicine, Shandong University, 250033, PR China.

出版信息

Eur J Med Chem. 2021 Feb 15;212:113097. doi: 10.1016/j.ejmech.2020.113097. Epub 2020 Dec 13.

Abstract

Encouraged by our earlier discovery of N1-selective inhibitors, the 150-cavity of influenza virus neuraminidases (NAs) could be further exploited to yield more potent oseltamivir derivatives. Herein, we report the design, synthesis and biological evaluation of a series of novel oseltamivir derivatives via the structural modifications at C-NH of oseltamivir targeting 150-cavity. Among them, compound 5c bearing 4-(3-methoxybenzyloxy)benzyl group exhibited the most potent activity, which was lower or modestly improved activities than oseltamivir carboxylate (OSC) against N1 (H1N1), N1 (H5N1) and N1 (H5N1-H274Y). Specifically, there was 30-fold loss of activity against the wild-type strain H1N1. However, 5c displayed 4.85-fold more potent activity than OSC against H5N1-H274Y NA. Also, 5c demonstrated low cytotoxicity in vitro and no acute toxicity in mice. Molecular docking studies provided insights into the high potency of 5c against N1 and N1-H274Y mutant NAs. Besides, the in silico prediction of physicochemical properties and CYP enzymatic inhibitory ability of representative compounds were conducted to evaluate their drug-like properties.

摘要

受我们早期发现 N1 选择性抑制剂的启发,我们可以进一步利用流感病毒神经氨酸酶 (NA) 的 150 腔来产生更有效的奥司他韦衍生物。在此,我们通过针对 150 腔的奥司他韦 C-NH 结构修饰,设计、合成和生物评价了一系列新型奥司他韦衍生物。其中,带有 4-(3-甲氧基苄氧基)苄基的化合物 5c 表现出最强的活性,其对 N1(H1N1)、N1(H5N1)和 N1(H5N1-H274Y)的活性均低于或适度优于奥司他韦羧酸酯 (OSC)。具体来说,对野生型 H1N1 株的活性降低了 30 倍。然而,5c 对 H5N1-H274Y NA 的活性比 OSC 强 4.85 倍。此外,5c 在体外显示出低细胞毒性,在小鼠中无急性毒性。分子对接研究深入了解了 5c 对 N1 和 N1-H274Y 突变型 NA 的高活性。此外,还对代表性化合物的理化性质和 CYP 酶抑制能力进行了计算机预测,以评估它们的类药性。

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