Institute of Biochemistry and Molecular Biology, National Taiwan Universitygrid.19188.39, Taipei, Taiwan.
Department of Medicine, National Taiwan Universitygrid.19188.39, Taipei, Taiwan.
J Virol. 2022 Apr 13;96(7):e0010722. doi: 10.1128/jvi.00107-22. Epub 2022 Mar 16.
The propagation of the hepatitis C virus (HCV) is regulated in part by the phosphorylation of its nonstructural protein NS5A that undergoes sequential phosphorylation on several highly conserved serine residues and switches from a hypo- to a hyperphosphorylated state. Previous studies have shown that NS5A sequential phosphorylation requires NS3 encoded on the same NS3-NS4A-NS4B-NS5A polyprotein. Subtle mutations in NS3 without affecting its protease activity could affect NS5A phosphorylation. Given the ATPase domain in the NS3 COOH terminus, we tested whether NS3 participates in NS5A phosphorylation similarly to the nucleoside diphosphate kinase-like activity of the rotavirus NSP2 nucleoside triphosphatase (NTPase). Mutations in the NS3 ATP-binding motifs blunted NS5A hyperphosphorylation and phosphorylation at serines 225, 232, and 235, whereas a mutation in the RNA-binding domain did not. The phosphorylation events were not rescued with wild-type NS3 provided in . When provided with an NS3 ATPase-compatible ATP analog, -benzyl-ATP-γ-S, thiophosphorylated NS5A was detected in the cells expressing the wild-type NS3-NS5B polyprotein. The thiophosphorylation level was lower in the cells expressing NS3-NS5B with a mutation in the NS3 ATP-binding domain. assays with a synthetic peptide and purified wild-type NS3 followed by dot blotting and mass spectrometry found weak NS5A phosphorylation at serines 222 and 225 that was sensitive to an inhibitor of casein kinase Iα but not helicase. When casein kinase Iα was included in the assay, much stronger phosphorylation was observed at serines 225, 232, and 235. We concluded that NS5A sequential phosphorylation requires the ATP-binding domain of the NS3 helicase and that casein kinase Iα is a potent NS5A kinase. For more than 20 years, NS3 was known to participate in NS5A sequential phosphorylation. In the present study, we show for the first time that the ATP-binding domain of NS3 is involved in NS5A phosphorylation. assays showed that casein kinase Iα is a very potent kinase responsible for NS5A phosphorylation at serines 225, 232, and 235. Our data suggest that ATP binding by NS3 probably results in conformational changes that recruit casein kinase Iα to phosphorylate NS5A, initially at S225 and subsequently at S232 and S235. Our discovery reveals intricate requirements of the structural integrity of NS3 for NS5A hyperphosphorylation and HCV replication.
丙型肝炎病毒(HCV)的传播部分受到其非结构蛋白 NS5A 的磷酸化调节,该蛋白在几个高度保守的丝氨酸残基上经历顺序磷酸化,并从低磷酸化状态转变为高磷酸化状态。先前的研究表明,NS5A 顺序磷酸化需要 NS3 编码的同一 NS3-NS4A-NS4B-NS5A 多蛋白。NS3 中不影响其蛋白酶活性的细微突变可能会影响 NS5A 的磷酸化。鉴于 NS3 COOH 末端的 ATP 酶结构域,我们测试了 NS3 是否像轮状病毒 NSP2 核苷三磷酸酶(NTPase)的核苷二磷酸激酶样活性一样参与 NS5A 磷酸化。NS3 ATP 结合基序中的突变削弱了 NS5A 的过度磷酸化和丝氨酸 225、232 和 235 的磷酸化,而 RNA 结合结构域中的突变则没有。在用. 提供的野生型 NS3 进行挽救时,磷酸化事件没有得到恢复。当用 NS3 ATP 酶兼容的 ATP 类似物 -benzyl-ATP-γ-S 提供时,在表达野生型 NS3-NS5B 多蛋白的细胞中检测到硫代磷酸化的 NS5A。在表达 NS3-NS5B 的细胞中,当 NS3 ATP 结合结构域发生突变时,硫代磷酸化水平较低。用合成肽和纯化的野生型 NS3 进行. 测定,然后进行斑点印迹和质谱分析,发现丝氨酸 222 和 225 处的 NS5A 弱磷酸化,对酪蛋白激酶 Iα抑制剂敏感,但对解旋酶不敏感。当酪蛋白激酶 Iα包含在测定中时,在丝氨酸 225、232 和 235 处观察到更强的磷酸化。我们得出结论,NS5A 顺序磷酸化需要 NS3 解旋酶的 ATP 结合结构域,并且酪蛋白激酶 Iα 是一种有效的 NS5A 激酶。 20 多年来,人们一直知道 NS3 参与 NS5A 顺序磷酸化。在本研究中,我们首次表明 NS3 的 ATP 结合结构域参与了 NS5A 的磷酸化。. 测定表明,酪蛋白激酶 Iα 是一种非常有效的激酶,负责丝氨酸 225、232 和 235 处的 NS5A 磷酸化。我们的数据表明,NS3 的 ATP 结合可能导致构象变化,从而招募酪蛋白激酶 Iα 磷酸化 NS5A,最初在 S225,随后在 S232 和 S235。我们的发现揭示了 NS3 的结构完整性对 NS5A 过度磷酸化和 HCV 复制的复杂要求。