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Rational Engineering of Recombinant Picornavirus Capsids to Produce Safe Protective Vaccine Antigen

机译:重组小核糖核酸衣壳的合理工程设计可产生安全的保护性疫苗抗原

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摘要

Foot-and-mouth disease remains a major plague of livestock and outbreaks are often economically catastrophic. Current inactivated virus vaccines require expensive high containment facilities for their production and maintenance of a cold-chain for their activity. We have addressed both of these major drawbacks. Firstly we have developed methods to efficiently express recombinant empty capsids. Expression constructs aimed at lowering the levels and activity of the viral protease required for the cleavage of the capsid protein precursor were used; this enabled the synthesis of empty A-serotype capsids in eukaryotic cells at levels potentially attractive to industry using both vaccinia virus and baculovirus driven expression. Secondly we have enhanced capsid stability by incorporating a rationally designed mutation, and shown by X-ray crystallography that stabilised and wild-type empty capsids have essentially the same structure as intact virus. Cattle vaccinated with recombinant capsids showed sustained virus neutralisation titres and protection from challenge 34 weeks after immunization. This approach to vaccine antigen production has several potential advantages over current technologies by reducing production costs, eliminating the risk of infectivity and enhancing the temperature stability of the product. Similar strategies that will optimize host cell viability during expression of a foreign toxic gene and/or improve capsid stability could allow the production of safe vaccines for other pathogenic picornaviruses of humans and animals.
机译:口蹄疫仍然是牲畜的主要灾祸,疫情在经济上往往是灾难性的。当前的灭活病毒疫苗需要昂贵的高遏制设施来生产和维持其活性的冷链。我们已经解决了这两个主要缺点。首先,我们开发了有效表达重组空衣壳的方法。使用了旨在降低衣壳蛋白前体裂解所需的病毒蛋白酶的水平和活性的表达构建体。这使得能够使用痘苗病毒和杆状病毒驱动的表达在真核细胞中合成可能对工业具有潜在吸引力的水平的空A血清型衣壳。其次,通过整合合理设计的突变,我们提高了衣壳的稳定性,X射线晶体学表明,稳定的和野生型空衣壳具有与完整病毒基本相同的结构。接种重组衣壳的牛表现出持续的病毒中和效价,并在免疫后34周免受攻击。通过降低生产成本,消除感染风险并提高产品的温度稳定性,这种疫苗抗原生产方法比当前技术具有多个潜在优势。在外源毒性基因表达过程中优化宿主细胞活力和/或改善衣壳稳定性的类似策略可允许生产用于人类和动物的其他致病性微小RNA病毒的安全疫苗。

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