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Establishment of an Efficient and Flexible Genetic Manipulation Platform Based on a Fosmid Library for Rapid Generation of Recombinant Pseudorabies Virus

机译:基于Fosmid库的高效灵活的遗传操作平台的建立用于快速产生重组伪狂犬病病毒

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摘要

Conventional genetic engineering of pseudorabies virus (PRV) is essentially based on homologous recombination or bacterial artificial chromosome. However, these techniques require multiple plaque purification, which is labor-intensive and time-consuming. The aim of the present study was to develop an efficient, direct, and flexible genetic manipulation platform for PRV. To this end, the PRV genomic DNA was extracted from purified PRV virions and sheared into approximately 30–45-kb DNA fragments. After end-blunting and phosphorylation, the DNA fragments were separated by pulsed-field gel electrophoresis, the recovered DNA fragments were inserted into the cloning-ready fosmids. The fosmids were then transformed into Escherichia coli and selected clones were end-sequenced for full-length genome assembly. Overlapping fosmid combinations that cover the complete genome of PRV were directly transfected into Vero cells and PRV was rescued. The morphology and one-step growth curve of the rescued virus were indistinguishable from those of the parent virus. Based on this system, a recombinant PRV expressing enhanced green fluorescent protein fused with the VP26 gene was generated within 2 weeks, and this recombinant virus can be used to observe the capsid transport in axons. The new genetic manipulation platform developed in the present study is an efficient, flexible, and stable method for the study of the PRV life cycle and development of novel vaccines.
机译:伪狂犬病病毒(PRV)的常规基因工程基本上基于同源重组或细菌人工染色体。然而,这些技术需要多次噬菌斑纯化,这是费力且费时的。本研究的目的是为PRV开发高效,直接,灵活的基因操作平台。为此,从纯化的PRV病毒体中提取PRV基因组DNA,并剪切成大约30-45-kb的DNA片段。末端钝化和磷酸化后,通过脉冲场凝胶电泳分离DNA片段,将回收的DNA片段插入准备好克隆的fosmids中。然后将所述粘粒转化到大肠杆菌中,并对选定的克隆进行末端测序以进行全长基因组装配。覆盖了PRV完整基因组的重叠fosmid组合被直接转染到Vero细胞中,并拯救了PRV。所拯救病毒的形态和一步生长曲线与亲代病毒的形态和一步增长曲线没有区别。基于该系统,在2周内产生了表达增强的绿色荧光蛋白与VP26基因融合的重组PRV,该重组病毒可用于观察轴突中的衣壳运输。在本研究中开发的新的基因操作平台是一种有效,灵活和稳定的方法,用于研究PRV的生命周期和开发新型疫苗。

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