Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, Sweden.
J Mol Biol. 2010 Jul 23;400(4):768-82. doi: 10.1016/j.jmb.2010.05.046. Epub 2010 May 25.
RNA helicases of the DExD/H-box superfamily are critically involved in all RNA-related processes. No crystal structures of human DExH-box domains had been determined previously, and their structures were difficult to predict owing to the low level of homology among DExH-motif-containing proteins from diverse species. Here we present the crystal structures of the conserved domain 1 of the DEIH-motif-containing helicase DHX9 and of the DEAD-box helicase DDX20. Both contain a RecA-like core, but DHX9 differs from DEAD-box proteins in the arrangement of secondary structural elements and is more similar to viral helicases such as NS3. The N-terminus of the DHX9 core contains two long alpha-helices that reside on the surface of the core without contributing to nucleotide binding. The RNA-polymerase-II-interacting minimal transactivation domain sequence forms an extended loop structure that resides in a hydrophobic groove on the surface of the DEIH domain. DHX9 lacks base-selective contacts and forms an unspecific but important stacking interaction with the base of the bound nucleotide, and our biochemical analysis confirms that the protein can hydrolyze ATP, guanosine 5'-triphosphate, cytidine 5'-triphosphate, and uridine 5'-triphosphate. Together, these findings allow the localization of functional motifs within the three-dimensional structure of a human DEIH helicase and show how these enzymes can bind nucleotide with high affinity in the absence of a Q-motif.
DExD/H 盒超级家族的 RNA 解旋酶在所有与 RNA 相关的过程中都起着至关重要的作用。以前没有确定过人类 DExH 盒结构域的晶体结构,由于不同物种的 DExH 基序蛋白同源性较低,因此它们的结构难以预测。在此,我们展示了含有 DEIH 基序的解旋酶 DHX9 和 DEAD 盒解旋酶 DDX20 的保守结构域 1 的晶体结构。两者都含有一个 RecA 样核心,但 DHX9 在二级结构元件的排列上与 DEAD 盒蛋白不同,与 NS3 等病毒解旋酶更为相似。DHX9 核心的 N 端包含两个长的α-螺旋,它们位于核心表面,不参与核苷酸结合。RNA 聚合酶 II 相互作用的最小转录激活域序列形成一个延伸的环结构,位于 DEIH 结构域表面的疏水槽中。DHX9 缺乏碱基选择性接触,与结合核苷酸的碱基形成非特异性但重要的堆积相互作用,我们的生化分析证实该蛋白可以水解 ATP、鸟苷 5'-三磷酸、胞苷 5'-三磷酸和尿苷 5'-三磷酸。总之,这些发现允许在人类 DEIH 解旋酶的三维结构中定位功能基序,并展示了这些酶如何在没有 Q 基序的情况下高亲和力地结合核苷酸。