Gu Meigang, Rice Charles M
From the Laboratory of Virology and Infectious Disease, The Rockefeller University, New York, New York 10065
J Biol Chem. 2016 Jul 8;291(28):14499-509. doi: 10.1074/jbc.M115.704379. Epub 2016 May 12.
Genomic DNA replication requires helicases to processively unwind duplexes. Although helicases encoded by positive-strand RNA viruses are necessary for RNA genome replication, their functions are not well understood. We determined structures of the hepatitis C virus helicase (NS3h) in complex with the transition state ATP mimic ADP·AlF4 (-) and compared them with the previous nucleic acid-associated ternary complexes. The results suggested that nucleic acid binding promotes a structural change of the spring helix at the transition state, optimizing the interaction network centered on the nucleophilic water. Analysis of ATP hydrolysis with and without conformational restraints on the spring helix further supported the importance of its action for both nucleic acid-stimulated and basal catalysis. We further found that an F238P substitution, predicted to destabilize the helix, diminished viral RNA replication without significantly affecting ATP-dependent duplex unwinding. The stability of the secondary structure, thus, seems critical for additional functions of NS3h. Taken together, the results suggest that the spring helix may be central to the coordination of multiple modes of NS3h action. Further characterization centered on this element may help understand the molecular details of how the viral helicase facilitates RNA replication. This new structural information may also aid efforts to develop specific inhibitors targeting this essential viral enzyme.
基因组DNA复制需要解旋酶持续解开双链。尽管正链RNA病毒编码的解旋酶对于RNA基因组复制是必需的,但其功能尚未得到充分了解。我们确定了丙型肝炎病毒解旋酶(NS3h)与过渡态ATP模拟物ADP·AlF4 (-) 结合的结构,并将其与之前的核酸相关三元复合物进行了比较。结果表明,核酸结合促进了过渡态下弹簧螺旋的结构变化,优化了以亲核水为中心的相互作用网络。对有无弹簧螺旋构象限制的ATP水解分析进一步支持了其作用对核酸刺激催化和基础催化的重要性。我们进一步发现,预测会使螺旋不稳定的F238P替代减少了病毒RNA复制,而对ATP依赖的双链解旋没有显著影响。因此,二级结构的稳定性似乎对NS3h的其他功能至关重要。综上所述,结果表明弹簧螺旋可能是NS3h多种作用模式协调的核心。围绕该元件的进一步表征可能有助于理解病毒解旋酶如何促进RNA复制的分子细节。这一新的结构信息也可能有助于开发针对这种必需病毒酶的特异性抑制剂。