爱泼斯坦-巴尔病毒遗传学:谈论BAC一代。

Regina Feederle, Emmalene J Bartlett, Henri-Jacques Delecluse
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引用次数: 36

摘要

基因突变生物遍及生物学的各个领域。早期,人们发现疱疹病毒(HV)可以在真核细胞中使用同源重组技术进行遗传分析。最近,将HV基因组克隆到细菌人工染色体(BAC)上已经成为可能。HV BACs可以很容易地在大肠杆菌中修饰并重新引入真核细胞以产生感染性病毒。来自HV BACs的突变体已被用于了解病毒基因组上存在的所有类型遗传元件的功能,但也用于产生具有潜在医学相关特性(如预防性疫苗)的突变体。本文回顾了应用于eb病毒(EBV)的BAC技术的发展,并综述了用于构建突变体的策略。我们扩展了正确使用EBV BACs所需的适当控制,以及研究人员在使用这些重组体时面临的技术障碍。然后我们讨论进一步的技术发展如何成功地克服这些困难。最后,我们编目了目前可用的EBV BAC突变体,并使用几个代表性的例子说明了它们对该领域的贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Epstein-Barr virus genetics: talking about the BAC generation.

Genetic mutant organisms pervade all areas of Biology. Early on, herpesviruses (HV) were found to be amenable to genetic analysis using homologous recombination techniques in eukaryotic cells. More recently, HV genomes cloned onto a bacterial artificial chromosome (BAC) have become available. HV BACs can be easily modified in E.coli and reintroduced in eukaryotic cells to produce infectious viruses. Mutants derived from HV BACs have been used both to understand the functions of all types of genetic elements present on the virus genome, but also to generate mutants with potentially medically relevant properties such as preventative vaccines. Here we retrace the development of the BAC technology applied to the Epstein-Barr virus (EBV) and review the strategies available for the construction of mutants. We expand on the appropriate controls required for proper use of the EBV BACs, and on the technical hurdles researchers face in working with these recombinants. We then discuss how further technological developments might successfully overcome these difficulties. Finally, we catalog the EBV BAC mutants that are currently available and illustrate their contributions to the field using a few representative examples.

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