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基于广谱β-环糊精的抗流感病毒纳米材料的研发

Development of Broad-Spectrum β-Cyclodextrins-Based Nanomaterials Against Influenza Viruses.

作者信息

Zwygart Arnaud Charles-Antoine, Medaglia Chiara, Zhu Yong, Bart Tarbet E, Jonna Westover, Fage Clément, Le Roy Didier, Roger Thierry, Clément Sophie, Constant Samuel, Huang Song, Stellacci Francesco, Silva Paulo Jacob, Tapparel Caroline

机构信息

Department of Microbiology and Molecular Medicine, University of Geneva, Geneva, Switzerland.

Institute of Materials, Ecole polytechnique fédérale de Lausanne, Lausanne, Switzerland.

出版信息

J Med Virol. 2024 Dec;96(12):e70101. doi: 10.1002/jmv.70101.

Abstract

In recent decades, epidemics and pandemics have multiplied throughout the world, with viruses generally being the primary responsible agents. Among these, influenza viruses play a key role, as they potentially cause severe respiratory distress, representing a major threat to public health. Our study aims to develop new broad-spectrum antivirals against influenza to improve the response to viral disease outbreaks. We engineered macromolecules (named CD-SA) consisting of a β-cyclodextrin scaffold modified with hydrophobic linkers in the primary face, onto which unitary sialic acid epitopes are covalently grafted to mimic influenza virus-host receptors. We assessed the antiviral efficacy, mechanism of action, and the genetic barrier to resistance of this compound against influenza in vitro, ex vivo, and in vivo. We demonstrated that CD-SA, with a unitary SA, without extensive polysaccharides or specific connectivity, acts as a potent virucidal antiviral against several human influenza A and B viruses. Additionally, CD-SA displayed antiviral activity against SARS-CoV-2, a virus that also relies on sialic acid for attachment. We then assessed the genetic barrier to resistance for CD-SA. While resistance emerged after six passages with CD-SA alone, the virus remained sensitive through eight passages when co-treated with interferon-λ1 (IFN λ1). Finally, we completed the characterization of the antiviral activity by conducting both ex vivo and in vivo studies, demonstrating a potent antiviral effect in human airway epithelia and in a mouse model of infection, higher than that of Oseltamivir, a currently approved anti-influenza antiviral. The findings presented in this study support the potential therapeutic utility of a novel β-cyclodextrin-based nanomaterial for the treatment of influenza infections and potentially other sialic acid-dependent viruses.

摘要

近几十年来,世界各地的流行病和大流行成倍增加,病毒通常是主要病原体。其中,流感病毒起着关键作用,因为它们可能导致严重的呼吸窘迫,对公众健康构成重大威胁。我们的研究旨在开发新型广谱抗流感病毒药物,以改善对病毒性疾病爆发的应对。我们设计了一种大分子(名为CD-SA),它由在主面上用疏水连接体修饰的β-环糊精支架组成,在该支架上共价接枝单一的唾液酸表位以模拟流感病毒-宿主受体。我们在体外、离体和体内评估了该化合物对流感的抗病毒效力、作用机制和耐药性的遗传屏障。我们证明,具有单一唾液酸、无大量多糖或特定连接性的CD-SA,对几种甲型和乙型人类流感病毒具有强大的杀病毒抗病毒活性。此外,CD-SA对严重急性呼吸综合征冠状病毒2(SARS-CoV-2)也显示出抗病毒活性,该病毒同样依赖唾液酸进行附着。然后,我们评估了CD-SA的耐药性遗传屏障。虽然单独使用CD-SA传代六次后出现了耐药性,但与λ1干扰素(IFN λ1)联合处理时,病毒在传代八次后仍保持敏感。最后,我们通过进行离体和体内研究完成了抗病毒活性的表征,证明其在人气道上皮细胞和感染小鼠模型中具有强大的抗病毒作用,高于目前批准的抗流感病毒药物奥司他韦。本研究的结果支持了一种新型β-环糊精基纳米材料在治疗流感感染以及可能的其他依赖唾液酸的病毒方面的潜在治疗效用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dcd6/11609907/d23c19e1fcf3/JMV-96-e70101-g004.jpg

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