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一种用于表达微小核糖核酸病毒和丙型肝炎病毒RNA基因组的高效且稳定的体外翻译系统。

A highly efficient and robust in vitro translation system for expression of picornavirus and hepatitis C virus RNA genomes.

作者信息

Svitkin Yuri V, Sonenberg Nahum

机构信息

Department of Biochemistry, McGill University, Montreal, Quebec, Canada.

出版信息

Methods Enzymol. 2007;429:53-82. doi: 10.1016/S0076-6879(07)29004-4.

Abstract

A Krebs-2 cell-free extract that efficiently translates encephalomyocarditis virus (EMCV) RNA and extensively processes the viral polyprotein is also capable of supporting complete infectious EMCV replication. The system displays high RNA synthesis activity and de novo synthesis of virus up to titers of 2 x 10(7) to 6 x 10(7) plaque-forming units (pfu)/ml. The preparation of Krebs-2 cell extract and methods of analysis of EMCV-specific processes in vitro are described. We also demonstrate that the Krebs-2 cell-free system translates the entire open reading frame of the hepatitis C virus (HCV) RNA and properly processes the viral polyprotein when supplemented with canine microsomal membranes. In addition to processing, other posttranslational modifications of HCV proteins take place in vitro, such as the N-terminal glycosylation of the E1 and the E2 precursor (E2-p7) and phosphorylation of NS5A. The HCV RNA-programmed Krebs-2 cell-free extract should prove very useful as a novel screen for drugs that inhibit NS3-mediated processing. The use of this system should help fill the gap in understanding the regulation of synthesis and maturation of HCV proteins. With further optimization of cell-free conditions, the entire reconstitution of infectious HCV synthesis in vitro might become feasible.

摘要

一种能有效翻译脑心肌炎病毒(EMCV)RNA并广泛加工病毒多聚蛋白的克雷布斯-2无细胞提取物,也能够支持完整的感染性EMCV复制。该系统显示出高RNA合成活性,并且能从头合成病毒,病毒滴度可达2×10⁷至6×10⁷ 蚀斑形成单位(pfu)/毫升。本文描述了克雷布斯-2细胞提取物的制备方法以及体外分析EMCV特异性过程的方法。我们还证明,当补充犬微粒体膜时,克雷布斯-2无细胞系统能翻译丙型肝炎病毒(HCV)RNA的整个开放阅读框,并正确加工病毒多聚蛋白。除了加工外,HCV蛋白的其他翻译后修饰也在体外发生,如E1和E2前体(E2-p7)的N端糖基化以及NS5A的磷酸化。HCV RNA编程的克雷布斯-2无细胞提取物作为一种筛选抑制NS3介导加工的药物的新方法应该会非常有用。使用该系统应有助于填补在理解HCV蛋白合成和成熟调控方面的空白。随着无细胞条件的进一步优化,体外完全重建感染性HCV合成可能变得可行。

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