二氢月桂酸脱氢酶
生物
病毒学
甲型流感病毒
嘧啶代谢
核苷
胞苷
病毒
病毒复制
抗病毒药物
嘧啶
寄主因子
核苷酸
嘧啶类似物
微生物学
核苷类似物
酶
核苷酸回收
H5N1亚型流感病毒
病菌
生物合成
正粘病毒科
细胞病变效应
结构-活动关系
大流行
传染病(医学专业)
抗药性
作者
Leon Schrell,David Scheibner,Antje Dickmanns,Kim M. Stegmann,Lukas Mathias Michaely,Annika Graaf,Philip Beer,Andrew Parker,Sandra Diederich,Anne Balkema‐Buschmann,Matthias Dobbelstein
标识
DOI:10.1016/j.antiviral.2025.106286
摘要
Influenza viruses remain a major threat to both human and animal health, with seasonal outbreaks and the risk of pandemics caused by reassortant strains. Antiviral drugs are needed as a complement to vaccines, but resistance often limits their long-term efficacy. N4-hydroxycytidine (NHC), the active form of Molnupiravir, shows potent activity against influenza A viruses (IAVs) in both cell cultures and animal models, with minimal resistance observed. Building on prior work in SARS-CoV-2, we investigated whether inhibiting pyrimidine biosynthesis could enhance NHC's antiviral activity against IAVs. The combination of NHC with inhibitors of dihydroorotate dehydrogenase (DHODH) or cytidine triphosphate synthases (CTPS1/2) showed strong synergy. This was evident through reduced cytopathic effects, decreased viral RNA and protein, and a marked absence of infectious virus particles. This synergy was consistent across multiple IAV subtypes, including H1N1, H1N2, H3N2, and H5N1. This synergistic effect was reversed by exogenously supplemented pyrimidine nucleosides, confirming nucleotide depletion as a key mechanism. However, some avian IAVs were less sensitive to the treatment in mammalian cells. The PB2-K627E mutation, affecting the interaction with host factor ANP32, modulated NHC efficacy, implicating viral adaptation in drug responsiveness. In a ferret model of H5N1 infection, NHC combined with the CTPS inhibitor STP938 reduced clinical symptoms and lung pathology, with NHC mostly driving antiviral activity and STP938 contributing to disease mitigation. These findings indicate that combining NHC with pyrimidine biosynthesis inhibitors enhances antiviral efficacy against IAVs, especially in rapidly replicating viruses, and may broaden the utility of nucleoside analogues in influenza therapy.
科研通智能强力驱动
Strongly Powered by AbleSci AI