Department of Virology and Parasitology, Fujita Health University School of Medicine, Toyoake, Aichi 470-1192, Japan.
Department of Pediatrics, Fujita Health University School of Medicine, Toyoake, Aichi 470-1192, Japan.
J Gen Virol. 2020 Aug;101(8):806-815. doi: 10.1099/jgv.0.001443. Epub 2020 Jun 3.
Reassortment is an important mechanism in the evolution of group A rotaviruses (RVAs), yielding viruses with novel genetic and phenotypic traits. The classical methods for generating RVA reassortants with the desired genetic combinations are laborious and time-consuming because of the screening and selection processes required to isolate a desired reassortant. Taking advantage of a recently developed RVA reverse genetics system based on just 11 cloned cDNAs encoding the RVA genome (11 plasmid-only system), we prepared a panel of simian SA11-L2 virus-based single-gene reassortants, each containing 1 segment derived from human KU virus of the G1P[8] genotype. It was shown that there was no gene-specific restriction of the reassortment potential. In addition to these 11 single-gene reassortants, a triple-gene reassortant with KU-derived core-encoding VP1-3 gene segments with the SA11-L2 genetic background, which make up a virion composed of the KU-based core, and SA11-L2-based intermediate and outer layers, could also be prepared with the 11 plasmid-only system. Finally, for possible clinical application of this system, we generated a series of VP7 reassortants representing all the major human RVA G genotypes (G1-4, G9 and G12) efficiently. The preparation of each of these single-gene reassortants was achieved within just 2 weeks. Our results demonstrate that the 11 plasmid-only system allows the rapid and reliable generation of RVA single-gene reassortants, which will be useful for basic research and clinical applications.
重配是 A 组轮状病毒(RVAs)进化中的一个重要机制,产生具有新遗传和表型特征的病毒。由于需要筛选和选择以分离所需的重组体,因此生成具有所需遗传组合的 RVA 重组体的经典方法既费力又费时。利用最近开发的基于仅 11 个克隆 cDNA 编码 RVA 基因组的 RVA 反向遗传学系统(11 个质粒-only 系统),我们制备了一组基于猴 SA11-L2 病毒的单基因重组体,每个重组体包含 1 个源自人类 KU 病毒的 G1P[8]基因型片段。结果表明,重配潜力没有基因特异性限制。除了这些 11 个单基因重组体之外,还可以使用 11 个质粒-only 系统制备具有 KU 衍生核心编码 VP1-3 基因片段和 SA11-L2 遗传背景的三基因重组体,这些基因片段构成了由基于 KU 的核心、SA11-L2 为基础的中间层和外层组成的病毒粒子。最后,为了可能将该系统应用于临床,我们高效地生成了一系列代表所有主要人类 RVA G 基因型(G1-4、G9 和 G12)的 VP7 重组体。这些单基因重组体中的每一个的制备都在短短 2 周内完成。我们的结果表明,11 个质粒-only 系统允许快速可靠地生成 RVA 单基因重组体,这将对基础研究和临床应用非常有用。