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水载纳米涂层可快速灭活 SARS-CoV-2 及其他病毒

Water-Borne Nanocoating for Rapid Inactivation of SARS-CoV-2 and Other Viruses.

机构信息

Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, Brisbane, Queensland 4072, Australia.

Department of Microbiology and Immunology, The University of Melbourne at the Peter Doherty Institute for Infection and Immunity, Melbourne 3000, Victoria, Australia.

出版信息

ACS Nano. 2021 Sep 28;15(9):14915-14927. doi: 10.1021/acsnano.1c05075. Epub 2021 Aug 23.

DOI:10.1021/acsnano.1c05075
PMID:34423970
Abstract

The rise in coronavirus variants has resulted in surges of the disease across the globe. The mutations in the spike protein on the surface of the virion membrane not only allow for greater transmission but also raise concerns about vaccine effectiveness. Preventing the spread of SARS-CoV-2, its variants, and other viruses from person to person via airborne or surface transmission requires effective inactivation of the virus. Here, we report a water-borne spray-on coating for the complete inactivation of viral particles and degradation of their RNA. Our nanoworms efficiently bind and, through subsequent large nanoscale conformational changes, rupture the viral membrane and subsequently bind and degrade its RNA. Our coating completely inactivated SARS-CoV-2 (VIC01) and an evolved SARS-CoV-2 variant of concern (B.1.1.7 (alpha)), influenza A, and a surrogate capsid pseudovirus expressing the influenza A virus attachment glycoprotein, hemagglutinin. The polygalactose functionality on the nanoworms targets the conserved S2 subunit on the SARS-CoV-2 virion surface spike glycoprotein for stronger binding, and the additional attachment of guanidine groups catalyze the degradation of its RNA genome. Coating surgical masks with our nanoworms resulted in complete inactivation of VIC01 and B.1.1.7, providing a powerful control measure for SARS-CoV-2 and its variants. Inactivation was further observed for the influenza A and an AAV-HA capsid pseudovirus, providing broad viral inactivation when using the nanoworm system. The technology described here represents an environmentally friendly coating with a proposed nanomechanical mechanism for inactivation of both enveloped and capsid viruses. The functional nanoworms can be easily modified to target viruses in future pandemics, and is compatible with large scale manufacturing processes.

摘要

冠状病毒变种的出现导致了全球范围内疾病的爆发。病毒包膜表面刺突蛋白的突变不仅允许更大的传播,也引起了对疫苗有效性的担忧。通过空气传播或表面传播防止 SARS-CoV-2、其变体和其他病毒在人与人之间传播,需要有效灭活病毒。在这里,我们报告了一种水基喷雾涂层,用于完全灭活病毒颗粒及其 RNA 的降解。我们的纳米蠕虫能够有效地结合,并通过随后的大纳米级构象变化,破坏病毒膜,随后结合并降解其 RNA。我们的涂层完全灭活了 SARS-CoV-2(VIC01)和一种进化的 SARS-CoV-2 变体(B.1.1.7(alpha))、流感 A 病毒和一种表达流感 A 病毒附着糖蛋白血凝素的包膜假病毒。纳米蠕虫上的半乳糖功能基靶向 SARS-CoV-2 病毒表面刺突糖蛋白上保守的 S2 亚基,以实现更强的结合,并且额外的胍基附着催化其 RNA 基因组的降解。用我们的纳米蠕虫涂覆外科口罩,导致 VIC01 和 B.1.1.7 完全失活,为 SARS-CoV-2 及其变体提供了强有力的控制措施。还观察到流感 A 和 AAV-HA 衣壳假病毒的失活,当使用纳米蠕虫系统时,提供了广泛的病毒失活。这里描述的技术代表了一种环保的涂层,具有一种针对包膜和衣壳病毒的拟议纳米机械灭活机制。功能纳米蠕虫可以很容易地被修饰,以针对未来的大流行病毒,并且与大规模制造工艺兼容。

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