亨德拉病毒
化学
病毒学
重组DNA
严重急性呼吸综合征冠状病毒2型(SARS-CoV-2)
病毒
2019年冠状病毒病(COVID-19)
药代动力学
传递率(结构动力学)
药理学
作用机理
2019-20冠状病毒爆发
代谢稳定性
大流行
高致病性
突变
计算生物学
机制(生物学)
呼吸道疾病
药效学
呼吸系统
效力
药物发现
作者
Irina N. Gaisina,Malaika D. Argade,Ryan Bott,Sean P. Bradley,Łukasz Tomorowicz,Mario Moisés Álvarez,Jazmin Galván Achi,Robert W. Cross,Viktoriya Borisevich,Rachel Sarah O’Toole,Moushimi Amaya,Christian A. Zielinski,Arsen Gaisin,Dejan Nikolić,Paul R. Carlier,Manu Anantpadma,Terry W. Moore,Christopher C. Broder,Thomas W. Geisbert,Norton P. Peet
标识
DOI:10.1021/acs.jmedchem.5c02646
摘要
Henipaviruses such as Nipah (NiV) and Hendra (HeV) are zoonotic pathogens that cause severe and often fatal respiratory illness and encephalitis in both animals and humans. These viruses exhibit high transmissibility and pandemic potential, a situation made worse by the absence of appropriate pharmaceutical countermeasures. To address this deficit, we conducted a hit-to-lead optimization campaign based on hit 1 identified through high-throughput screening against recombinant Cedar virus (rCedV), a nonpathogenic surrogate for NiV and HeV. This effort yielded a focused library of analogs that were initially screened against rCedV, with promising candidates subsequently validated against authentic NiV and HeV. Among these, analog 46 demonstrated superior in vitro metabolic stability and pharmacokinetic properties relative to hit 1 and is now positioned for in vivo efficacy evaluation. Concurrently, the mechanism of action of these first-in-class furopyrimidine-based antiviral agents was probed through time-of-addition assays, escape mutation analysis, and preliminary in silico modeling.
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