Department of Pharmaceutical Sciences, School of Pharmacy, University of Maryland, Baltimore, MD 21201, USA.
Proc Natl Acad Sci U S A. 2012 Apr 10;109(15):5633-8. doi: 10.1073/pnas.1120283109. Epub 2012 Mar 26.
Helicobacter pylori NikR (HpNikR) is a nickel-dependent transcription factor that regulates multiple genes in the H. pylori pathogen. There are conflicting data regarding the locations of the Ni(II) sites and the role of Ni(II) coordination in DNA recognition. Herein, we report crystal structures of (i) the metal-binding domain (MBD) of HpNikR (3.08 Å) and (ii) a mutant, H74A (2.04 Å), designed to disrupt native Ni(II) coordination. In the MBD structure, four nickel ions are coordinated to two different types of nickel sites (4-coordinate, square planar, and 5/6-coordinate, square pyramidal/octahedral). In the H74A structure, all four nickel ions are coordinated to 4-coordinate square-planar sites. DNA-binding studies reveal tighter binding for target DNA sequences for holo-HpNikR compared with the affinities of Ni(II) reconstituted apo-HpNikR and H74A for these same DNA targets, supporting a role for Ni(II) coordination to 5/6 sites in DNA recognition. Small-angle X-ray scattering studies of holo-HpNikR and H74A reveal a high degree of conformational flexibility centered at the DNA-binding domains of H74A, which is consistent with disorder observed in the crystal structure of the protein. A model of DNA recognition by HpNikR is proposed in which Ni(II) coordination to specific sites in the MBD have a long-range effect on the flexibility of the DNA-binding domains and, consequently, the DNA recognition properties.
幽门螺杆菌 NikR(HpNikR)是一种镍依赖性转录因子,可调节病原体幽门螺杆菌中的多个基因。关于 Ni(II)结合位点的位置以及 Ni(II)配位在 DNA 识别中的作用存在相互矛盾的数据。在此,我们报告了(i)HpNikR 的金属结合域(MBD)(3.08Å)和(ii)突变体 H74A(2.04Å)的晶体结构,该突变体旨在破坏天然 Ni(II)配位。在 MBD 结构中,四个镍离子与两种不同类型的镍结合位点(4 配位,平面四方和 5/6 配位,平面四方/八面体)配位。在 H74A 结构中,四个镍离子都与 4 配位的平面四方配位。DNA 结合研究表明,与 Ni(II)重组成的 apo-HpNikR 和 H74A 对这些相同的 DNA 靶标亲和力相比,全酶-HpNikR 对靶 DNA 序列的结合更紧密,这支持了 Ni(II)配位到 5/6 位在 DNA 识别中的作用。全酶-HpNikR 和 H74A 的小角 X 射线散射研究揭示了 H74A 的 DNA 结合域中心具有高度构象灵活性,这与该蛋白晶体结构中观察到的无序状态一致。提出了一种 HpNikR 识别 DNA 的模型,其中 MBD 中的特定位点的 Ni(II)配位对 DNA 结合域的灵活性具有远程影响,从而影响 DNA 识别特性。