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人工双顺反子蜱传脑炎病毒基因组的构建与诱变揭示了E蛋白第二个跨膜区在黄病毒组装中的重要功能。

Construction and mutagenesis of an artificial bicistronic tick-borne encephalitis virus genome reveals an essential function of the second transmembrane region of protein e in flavivirus assembly.

作者信息

Orlinger Klaus K, Hoenninger Verena M, Kofler Regina M, Mandl Christian W

机构信息

Clinical Institute of Virology, Medical University of Vienna, Kinderspitalgasse 15, A-1095 Vienna, Austria.

出版信息

J Virol. 2006 Dec;80(24):12197-208. doi: 10.1128/JVI.01540-06. Epub 2006 Oct 11.

Abstract

Flaviviruses have a monopartite positive-stranded RNA genome, which serves as the sole mRNA for protein translation. Cap-dependent translation produces a polyprotein precursor that is co- and posttranslationally processed by proteases to yield the final protein products. In this study, using tick-borne encephalitis virus (TBEV), we constructed an artificial bicistronic flavivirus genome (TBEV-bc) in which the capsid protein and the nonstructural proteins were still encoded in the cap cistron but the coding region for the surface proteins prM and E was moved to a separate translation unit under the control of an internal ribosome entry site element inserted into the 3' noncoding region. Mutant TBEV-bc was shown to produce particles that packaged the bicistronic RNA genome and were infectious for BHK-21 cells and mice. Compared to wild-type controls, however, TBEV-bc was less efficient in both RNA replication and infectious particle formation. We took advantage of the separate expression of the E protein in this system to investigate the role in viral assembly of the second transmembrane region of protein E (E-TM2), a second copy of which was retained in the cap cistron to fulfill its other role as an internal signal sequence in the polyprotein. Deletion analysis and replacement of the entire TBEV E-TM2 region with its counterpart from another flavivirus revealed that this element, apart from its role as a signal sequence, is important for virion formation.

摘要

黄病毒具有单分体正链RNA基因组,该基因组作为蛋白质翻译的唯一信使核糖核酸(mRNA)。依赖帽子结构的翻译产生一种多蛋白前体,该前体在蛋白酶的共翻译和翻译后加工下产生最终的蛋白质产物。在本研究中,我们利用蜱传脑炎病毒(TBEV)构建了一种人工双顺反子黄病毒基因组(TBEV-bc),其中衣壳蛋白和非结构蛋白仍由帽子顺反子编码,但表面蛋白prM和E的编码区被转移到一个单独的翻译单元,该单元受插入到3'非编码区的内部核糖体进入位点元件的控制。突变型TBEV-bc被证明能产生包装双顺反子RNA基因组的颗粒,并且对BHK-21细胞和小鼠具有感染性。然而,与野生型对照相比,TBEV-bc在RNA复制和感染性颗粒形成方面的效率都较低。我们利用该系统中E蛋白的单独表达来研究E蛋白第二个跨膜区(E-TM2)在病毒组装中的作用,其第二个拷贝保留在帽子顺反子中以履行其作为多蛋白内部信号序列的其他作用。缺失分析以及用另一种黄病毒的对应区域替换整个TBEV E-TM2区域表明,该元件除了作为信号序列的作用外,对病毒粒子的形成也很重要。

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