Institute of Biochemistry and Molecular Biology, College of Medicine, National Taiwan University, Taipei City 100, Taiwan.
Nucleic Acids Res. 2010 Jul;38(12):4173-81. doi: 10.1093/nar/gkq153. Epub 2010 Mar 9.
DNA gyrase is the only topoisomerase capable of introducing (-) supercoils into relaxed DNA. The C-terminal domain of the gyrase A subunit (GyrA-CTD) and the presence of a gyrase-specific 'GyrA-box' motif within this domain are essential for this unique (-) supercoiling activity by allowing gyrase to wrap DNA around itself. Here we report the crystal structure of Xanthomonas campestris GyrA-CTD and provide the first view of a canonical GyrA-box motif. This structure resembles the GyrA-box-disordered Escherichia coli GyrA-CTD, both adopting a non-planar beta-pinwheel fold composed of six seemingly spirally arranged beta-sheet blades. Interestingly, structural analysis revealed that the non-planar architecture mainly stems from the tilted packing seen between blades 1 and 2, with the packing geometry likely being defined by a conserved and unusual beta-strand-bearing proline. Consequently, the GyrA-box-containing blade 1 is placed at an angled spatial position relative to the other DNA-binding blades, and an abrupt bend is introduced into the otherwise flat DNA-binding surface. Mutagenesis studies support that the proline-induced structural twist contributes directly to gyrase's (-) supercoiling activity. To our knowledge, this is the first demonstration that a beta-strand-bearing proline may impact protein function. Potential relevance of beta-strand-bearing proline to disease phenylketonuria is also noted.
DNA 拓扑异构酶是唯一能够将负超螺旋引入松弛 DNA 的拓扑异构酶。拓扑异构酶 A 亚基的 C 端结构域(GyrA-CTD)和该结构域内存在的拓扑异构酶特异性“GyrA 盒”基序对于这种独特的负超螺旋活性是必不可少的,允许拓扑异构酶将 DNA 自身缠绕。在这里,我们报告了黄单胞菌 GyrA-CTD 的晶体结构,并提供了第一个典型 GyrA 盒基序的视图。该结构类似于无规卷曲的大肠杆菌 GyrA-CTD 的 GyrA 盒,均采用由六个看似螺旋排列的β-折叠叶片组成的非平面β-钉轮折叠。有趣的是,结构分析表明,非平面结构主要源于叶片 1 和 2 之间的倾斜堆积,堆积几何形状可能由保守且不寻常的具有β-链的脯氨酸定义。因此,含有 GyrA 盒的叶片 1 相对于其他 DNA 结合叶片处于倾斜的空间位置,并且在原本平坦的 DNA 结合表面中引入了突然的弯曲。突变研究支持脯氨酸诱导的结构扭曲直接有助于拓扑异构酶的负超螺旋活性。据我们所知,这是第一个证明具有β-链的脯氨酸可能影响蛋白质功能的例证。还注意到具有β-链的脯氨酸与疾病苯丙酮尿症的潜在相关性。