Tay Moon Y F, Saw Wuan Geok, Zhao Yongqian, Chan Kitti W K, Singh Daljit, Chong Yuwen, Forwood Jade K, Ooi Eng Eong, Grüber Gerhard, Lescar Julien, Luo Dahai, Vasudevan Subhash G
From the Program in Emerging Infectious Diseases, Duke-National University of Singapore Graduate Medical School, 8 College Road, Singapore 169857, Singapore.
the School of Biological Sciences, Nanyang Technological University, 60 Nanyang Drive, Singapore 637551, Singapore.
J Biol Chem. 2015 Jan 23;290(4):2379-94. doi: 10.1074/jbc.M114.607341. Epub 2014 Dec 8.
Dengue virus multifunctional proteins NS3 protease/helicase and NS5 methyltransferase/RNA-dependent RNA polymerase form part of the viral replication complex and are involved in viral RNA genome synthesis, methylation of the 5'-cap of viral genome, and polyprotein processing among other activities. Previous studies have shown that NS5 residue Lys-330 is required for interaction between NS3 and NS5. Here, we show by competitive NS3-NS5 interaction ELISA that the NS3 peptide spanning residues 566-585 disrupts NS3-NS5 interaction but not the null-peptide bearing the N570A mutation. Small angle x-ray scattering study on NS3(172-618) helicase and covalently linked NS3(172-618)-NS5(320-341) reveals a rigid and compact formation of the latter, indicating that peptide NS5(320-341) engages in specific and discrete interaction with NS3. Significantly, NS3:Asn-570 to alanine mutation introduced into an infectious DENV2 cDNA clone did not yield detectable virus by plaque assay even though intracellular double-stranded RNA was detected by immunofluorescence. Detection of increased negative-strand RNA synthesis by real time RT-PCR for the NS3:N570A mutant suggests that NS3-NS5 interaction plays an important role in the balanced synthesis of positive- and negative-strand RNA for robust viral replication. Dengue virus infection has become a global concern, and the lack of safe vaccines or antiviral treatments urgently needs to be addressed. NS3 and NS5 are highly conserved among the four serotypes, and the protein sequence around the pinpointed amino acids from the NS3 and NS5 regions are also conserved. The identification of the functionally essential interaction between the two proteins by biochemical and reverse genetics methods paves the way for rational drug design efforts to inhibit viral RNA synthesis.
登革病毒多功能蛋白NS3蛋白酶/解旋酶和NS5甲基转移酶/RNA依赖性RNA聚合酶是病毒复制复合体的一部分,参与病毒RNA基因组合成、病毒基因组5'-帽甲基化以及多蛋白加工等活动。先前的研究表明,NS5残基Lys-330是NS3与NS5相互作用所必需的。在此,我们通过竞争性NS3-NS5相互作用ELISA表明,跨越残基566-585的NS3肽破坏了NS3-NS5相互作用,但携带N570A突变的无效肽则不会。对NS3(172-618)解旋酶和共价连接的NS3(172-618)-NS5(320-341)进行的小角X射线散射研究表明,后者形成了刚性且紧密的结构,这表明肽NS5(320-341)与NS3进行了特异性和离散性的相互作用。值得注意的是,将NS3的Asn-570突变为丙氨酸引入感染性DENV2 cDNA克隆后,通过噬斑测定法未检测到可检测到的病毒,尽管通过免疫荧光检测到了细胞内双链RNA。通过实时RT-PCR对NS3:N570A突变体检测到负链RNA合成增加,这表明NS3-NS5相互作用在正链和负链RNA的平衡合成以实现强大的病毒复制中起着重要作用。登革病毒感染已成为全球关注的问题,缺乏安全的疫苗或抗病毒治疗急需得到解决。NS3和NS5在四种血清型中高度保守,并且来自NS3和NS5区域的精确氨基酸周围的蛋白质序列也保守。通过生化和反向遗传学方法鉴定这两种蛋白质之间功能上必不可少的相互作用,为抑制病毒RNA合成的合理药物设计努力铺平了道路。