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Development of chalcone-like derivatives and their biological and mechanistic investigations as novel influenza nuclear export inhibitors

查尔酮 化学 铅化合物 细胞毒性 立体化学 部分 连接器 奥司他韦 甲型流感病毒 病毒 生物化学 体外 病毒学 生物 医学 疾病 2019年冠状病毒病(COVID-19) 病理 计算机科学 传染病(医学专业) 操作系统
作者
Chuanfeng Liu,Ying Zhang,Ping Li,Huinan Jia,Jiuqiang Han,Jiwei Zhang,Edeildo Ferreira da Silva-Júnior,Sunanda Samanta,Parimal Kar,Bing Huang,Xinyong Liu,Peng Zhan
出处
期刊:European journal of medicinal chemistry [Elsevier]
卷期号:261: 115845-115845
标识
DOI:10.1016/j.ejmech.2023.115845
摘要

Concerning the emergence of resistance to current anti-influenza drugs, our previous phenotypic-based screening study identified the compound A9 as a promising lead compound. This chalcone analog, containing a 2,6-dimethoxyphenyl moiety, exhibited significant inhibitory activity against oseltamivir-resistant strains (H1N1 pdm09), with an EC50 value of 1.34 μM. However, it also displayed notable cytotoxicity, with a CC50 value of 41.46 μM. Therefore, compound A9 was selected as a prototype structure for further structural optimization in this study. Initially, it was confirmed that the substituting the α,β-unsaturated ketone with pent-1,4-diene-3-one as a linker group significantly reduced the cytotoxicity of the final compounds. Subsequently, the penta-1,4-dien-3-one group was utilized as a privileged fragment for further structural optimization. Following two subsequent rounds of optimizations, we identified compound IIB-2, which contains a 2,6-dimethoxyphenyl- and 1,4-pentadiene-3-one moieties. This compound exhibited inhibitory effects on oseltamivir-resistant strains comparable to its precursor (compound A9), while demonstrating reduced toxicity (CC50 > 100 μM). Furthermore, we investigated its mechanism of action against anti-influenza virus through immunofluorescence, Western blot, and surface plasmon resonance (SPR) experiments. The results revealed that compound IIB-2 can impede virus proliferation by blocking the export of influenza virus nucleoprotein. Thusly, our findings further emphasize influenza nuclear export as a viable target for designing novel chalcone-like derivatives with potential inhibitory properties that could be explored in future lead optimization studies.
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