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西塞尔布伦病毒NS5甲基转移酶结构域中RNA帽的识别:对黄病毒RNA加帽机制的启示

Recognition of RNA cap in the Wesselsbron virus NS5 methyltransferase domain: implications for RNA-capping mechanisms in Flavivirus.

作者信息

Bollati Michela, Milani Mario, Mastrangelo Eloise, Ricagno Stefano, Tedeschi Gabriella, Nonnis Simona, Decroly Etienne, Selisko Barbara, de Lamballerie Xavier, Coutard Bruno, Canard Bruno, Bolognesi Martino

机构信息

Department of Biomolecular Sciences and Biotechnology, CNR-INFM and CIMAINA, University of Milano, Milan, Italy.

出版信息

J Mol Biol. 2009 Jan 9;385(1):140-52. doi: 10.1016/j.jmb.2008.10.028. Epub 2008 Oct 19.

Abstract

The mRNA-capping process starts with the conversion of a 5'-triphosphate end into a 5'-diphosphate by an RNA triphosphatase, followed by the addition of a guanosine monophosphate unit in a 5'-5' phosphodiester bond by a guanylyltransferase. Methyltransferases are involved in the third step of the process, transferring a methyl group from S-adenosyl-l-methionine to N7-guanine (cap 0) and to the ribose 2'OH group (cap 1) of the first RNA nucleotide; capping is essential for mRNA stability and proper replication. In the genus Flavivirus, N7-methyltransferase and 2'O-methyltransferase activities have been recently associated with the N-terminal domain of the viral NS5 protein. In order to further characterize the series of enzymatic reactions that support capping, we analyzed the crystal structures of Wesselsbron virus methyltransferase in complex with the S-adenosyl-l-methionine cofactor, S-adenosyl-l-homocysteine (the product of the methylation reaction), Sinefungin (a molecular analogue of the enzyme cofactor), and three different cap analogues (GpppG, (N7Me)GpppG, and (N7Me)GpppA). The structural results, together with those on other flaviviral methyltransferases, show that the capped RNA analogues all bind to an RNA high-affinity binding site. However, lack of specific interactions between the enzyme and the first nucleotide of the RNA chain suggests the requirement of a minimal number of nucleotides following the cap to strengthen protein/RNA interaction. Our data also show that, following incubation with guanosine triphosphate, Wesselsbron virus methyltransferase displays a guanosine monophosphate molecule covalently bound to residue Lys28, hinting at possible implications for the transfer of a guanine group to ppRNA. The structures of the Wesselsbron virus methyltransferase complexes obtained are discussed in the context of a model for N7-methyltransferase and 2'O-methyltransferase activities.

摘要

信使核糖核酸(mRNA)加帽过程始于RNA三磷酸酶将5'-三磷酸末端转化为5'-二磷酸,随后鸟苷酸转移酶以5'-5'磷酸二酯键添加一个鸟苷单磷酸单元。甲基转移酶参与该过程的第三步,将甲基从S-腺苷-L-甲硫氨酸转移至第一个RNA核苷酸的N7-鸟嘌呤(帽0)和核糖2'-OH基团(帽1);加帽对于mRNA稳定性和正确复制至关重要。在黄病毒属中,N7-甲基转移酶和2'-O-甲基转移酶活性最近与病毒NS5蛋白的N端结构域相关。为了进一步表征支持加帽的一系列酶促反应,我们分析了韦塞尔斯布朗病毒甲基转移酶与S-腺苷-L-甲硫氨酸辅因子、S-腺苷-L-高半胱氨酸(甲基化反应产物)、西尼芬净(酶辅因子的分子类似物)以及三种不同帽类似物(GpppG、(N7Me)GpppG和(N7Me)GpppA)形成的复合物的晶体结构。结构结果与其他黄病毒甲基转移酶的结果一起表明,加帽的RNA类似物均与一个RNA高亲和力结合位点结合。然而,酶与RNA链第一个核苷酸之间缺乏特异性相互作用表明,帽后需要最少数量的核苷酸来加强蛋白质/RNA相互作用。我们的数据还表明,在与鸟苷三磷酸孵育后,韦塞尔斯布朗病毒甲基转移酶显示一个鸟苷单磷酸分子共价结合至赖氨酸28残基,这暗示了鸟嘌呤基团转移至ppRNA的可能影响。在N7-甲基转移酶和2'-O-甲基转移酶活性模型的背景下讨论了所获得的韦塞尔斯布朗病毒甲基转移酶复合物的结构。

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