Department of Integrative Structural and Computational Biology, The Scripps Research Institute, La Jolla, CA 92037.
Department of Molecular Medicine, The Scripps Research Institute, La Jolla, CA 92037.
Proc Natl Acad Sci U S A. 2024 May 28;121(22):e2310677121. doi: 10.1073/pnas.2310677121. Epub 2024 May 16.
Seasonal and pandemic-associated influenza strains cause highly contagious viral respiratory infections that can lead to severe illness and excess mortality. Here, we report on the optimization of our small-molecule inhibitor F0045(S) targeting the influenza hemagglutinin (HA) stem with our Sulfur-Fluoride Exchange (SuFEx) click chemistry-based high-throughput medicinal chemistry (HTMC) strategy. A combination of SuFEx- and amide-based lead molecule diversification and structure-guided design led to identification and validation of ultrapotent influenza fusion inhibitors with subnanomolar EC cellular antiviral activity against several influenza A group 1 strains. X-ray structures of six of these compounds with HA indicate that the appended moieties occupy additional pockets on the HA surface and increase the binding interaction, where the accumulation of several polar interactions also contributes to the improved affinity. The compounds here represent the most potent HA small-molecule inhibitors to date. Our divergent HTMC platform is therefore a powerful, rapid, and cost-effective approach to develop bioactive chemical probes and drug-like candidates against viral targets.
季节性流感和大流行相关流感株引起高度传染性的病毒性呼吸道感染,可导致严重疾病和超额死亡。在这里,我们报告了我们的小分子抑制剂 F0045(S)的优化,该抑制剂针对流感血凝素 (HA)茎,使用我们的基于硫氟交换 (SuFEx)点击化学的高通量药物化学 (HTMC)策略。基于 SuFEx 和酰胺的先导分子多样化和结构指导设计的结合,导致了鉴定和验证超高效的流感融合抑制剂,对几种甲型流感 1 组株具有亚纳摩尔 EC 细胞抗病毒活性。这些化合物中有六个与 HA 的 X 射线结构表明,附加的部分占据了 HA 表面上的额外口袋,并增加了结合相互作用,其中几个极性相互作用的积累也有助于提高亲和力。这些化合物是迄今为止最有效的 HA 小分子抑制剂。因此,我们的发散 HTMC 平台是针对病毒靶标开发生物活性化学探针和类药候选物的强大、快速且具有成本效益的方法。