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Heteromultivalent topology-matched nanostructures as potent and broad-spectrum influenza A virus inhibitors

机译:异组偶拓扑匹配纳米结构作为有效和广谱流感病毒抑制剂

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Here, we report the topology-matched design of heteromultivalent nanostructures as potent and broad-spectrum virus entry inhibitors based on the host cell membrane. Initially, we investigate the virus binding dynamics to validate the better binding performance of the heteromultivalent moieties as compared to homomultivalent ones. The heteromultivalent binding moieties are transferred to nanostructures with a bowl-like shape matching the viral spherical surface. Unlike the conventional homomultivalent inhibitors, the heteromultivalent ones exhibit a half maximal inhibitory concentration of 32.4 ± 13.7 μg/ml due to the synergistic multivalent effects and the topology-matched shape. At a dose without causing cellular toxicity, 99.99% reduction of virus propagation has been achieved. Since multiple binding sites have also been identified on the S protein of SARS-CoV-2 (severe acute respiratory syndrome coronavirus 2), we envision that the use of heteromultivalent nanostructures may also be applied to develop a potent inhibitor to prevent coronavirus infection.
机译:在此,我们向基于宿主细胞膜报告作为有效和广谱病毒进入抑制剂的异聚维拉纳米结构的拓扑匹配设计。最初,我们研究病毒结合动力学以验证与均法的均等部分的更好的结合性能。异载体结合部分用匹配的病毒球形表面与碗状形状转移至纳米结构。与常规的均外抑制剂不同,由于协同的多价效应和拓扑匹配的形状,异普朗维等价抑制剂具有32.4±13.7μg/ ml的半最大抑制浓度。在不引起细胞毒性的情况下,已经实现了病毒繁殖的99.99%的病毒繁殖。由于还在SARS-COV-2(严重急性呼吸综合征冠状病毒2)的S蛋白上鉴定了多个结合位点,因此考虑使用异载纳米结构的使用也可以应用于产生有效的抑制剂以预防冠状病毒感染。

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