Touzelet Olivier, Loukili Noureddine, Pelet Thierry, Fairley Derek, Curran Joseph, Power Ultan F
Centre of Infection & Immunity, School of Medicine, Dentistry & Biomedical Sciences, Queen's University Belfast, Medical Biology Centre, 97 Lisburn Road, Belfast BT9 7BL, Northern Ireland.
Virus Res. 2009 Mar;140(1-2):40-8. doi: 10.1016/j.virusres.2008.10.019. Epub 2008 Dec 30.
Reverse genetics has facilitated the use of non-segmented negative strand RNA viruses (NNSV) as vectors. Currently, heterologous gene expression necessitates insertion of extra-numeral transcription units (ENTUs), which may alter the NNSV polar transcription gradient and attenuate growth relative to wild-type (Wt). We hypothesized that rescuing recombinant Sendai Virus (rSeV) with a bicistronic gene might circumvent this attenuation but still allow heterologous open reading frame (ORF) expression. Therefore, we used a 9-nucleotide sequence previously described with internal ribosome entry site (IRES) activity, which, when constructed as several repeats, synergistically increased the level of expression of the second cistron [Chappell, S.A., Edelman, G.M., Mauro, V.P., 2000. A 9-nt segment of a cellular mRNA can function as an internal ribosome entry site (IRES) and when present in linked multiple copies greatly enhances IRES activity. Proc. Natl. Acad. Sci. U.S.A. 97, 1536-1541]. We inserted the Renilla luciferase (rLuc) ORF, preceded by 1, 3 or 7 IRES copies, downstream of the SeV N ORF in an infectious clone. Corresponding rSeVs were successfully rescued. Interestingly, bicistronic rSeVs grew as fast as or faster than Wt rSeV. Furthermore, SeV gene transcription downstream of the N/rLuc gene was either equivalent to, or slightly enhanced, compared to Wt rSeV. Importantly, all rSeV/rLuc viruses efficiently expressed rLuc. IRES repetition increased rLuc expression at a multiplicity of infection of 0.1, although without evidence of synergistic enhancement. In conclusion, our approach provides a novel way of insertion and expression of foreign genes in NNSVs.
反向遗传学促进了非节段性负链RNA病毒(NNSV)作为载体的应用。目前,异源基因表达需要插入额外的转录单元(ENTU),这可能会改变NNSV的极性转录梯度,并相对于野生型(Wt)减弱生长。我们假设用双顺反子基因拯救重组仙台病毒(rSeV)可能会规避这种减弱,但仍允许异源开放阅读框(ORF)表达。因此,我们使用了先前描述的具有内部核糖体进入位点(IRES)活性的9核苷酸序列,当构建为几个重复序列时,它会协同增加第二个顺反子的表达水平[Chappell, S.A., Edelman, G.M., Mauro, V.P., 2000. 细胞mRNA的一个9核苷酸片段可作为内部核糖体进入位点(IRES)发挥作用,当以多个拷贝相连存在时,会大大增强IRES活性。美国国家科学院院刊97, 1536 - 1541]。我们在感染性克隆中,将海肾荧光素酶(rLuc)ORF插入到SeV N ORF下游,其前面有1、3或7个IRES拷贝。相应的rSeV成功拯救出来。有趣的是,双顺反子rSeV的生长速度与Wt rSeV一样快或更快。此外,与Wt rSeV相比,N/rLuc基因下游的SeV基因转录水平相当或略有增强。重要的是,所有rSeV/rLuc病毒都能有效地表达rLuc。在感染复数为0.1时,IRES重复增加了rLuc的表达,尽管没有协同增强的证据。总之,我们的方法为在NNSV中插入和表达外源基因提供了一种新途径。