Lane A N, Jenkins T C, Brown T, Neidle S
Laboratory of Molecular Structure, National Institute for Medical Research, The Ridgeway, Mill Hill, London, U.K.
Biochemistry. 1991 Feb 5;30(5):1372-85. doi: 10.1021/bi00219a030.
The conformation of the EcoRI dodecamer d(CGCGAATTCGCG)2 has been examined in solution by 1H and 31P NMR. Spin-spin coupling constants and nuclear Overhauser (NOE) enhancement spectroscopy show that all deoxyriboses lie in the south domain, with a small admixture of the north conformation (0-20%). The time dependence of the nuclear Overhauser enhancements also reveals a relatively uniform conformation at the glycosidic bonds (average angle, chi = -114 degrees). The average helical twist is 36.5 degrees (9.8 base pairs per turn). Tilt angles are small (in the range 0 to -10 degrees), and roll angles are poorly determined. Unlike single-crystal X-ray studies of the same sequence, there is no evidence for asymmetry in the structure. Both the NOE intensities and 31P relaxation data imply conformational anomalies at the C3-G4/C9-G10 and the A5-A6/T7-T8 steps. Berenil binds in 1:1 stoichiometry to the dodecamer with high affinity (Kd = 1 microM at 298 K) and causes substantial changes in chemical shifts of the sugar protons of nucleotides Ado 5-Cyt 9 and of the H2 resonances of the two Ado residues. No significant asymmetry appears to be induced in the DNA conformation on binding, and there is no evidence for intercalation, although the binding site is not centrosymmetric. NOEs are observed between the aromatic protons of berenil and the H1' of both Thy 7 and Thy 8, as well as to Ado 5 and Ado 6 H2. These results firmly establish that berenil binds via the minor groove and closely approaches the nucleotides Ado 6, Thy 7, and Thy 8. On the basis of quantitative NOE spectroscopy and measurements of spin-spin coupling constants, changes in the conformations of the nucleotides are found to be small. Using the observed NOEs between the ligand and the DNA together with the derived glycosidic torsion angles, we have built models that satisfy all of the available solution data. The berenil molecule binds at the 5'-AAT (identical to 5'-ATT on the complementary strand) site such that (i) favorable hydrogen bonds are formed between the charged amidinium groups and the N3 atoms of Ado 6 and Ado 18 and (ii) the ligand is closely isohelical with the floor of the minor groove.
通过1H和31P NMR对EcoRI十二聚体d(CGCGAATTCGCG)2在溶液中的构象进行了研究。自旋-自旋耦合常数和核Overhauser(NOE)增强光谱表明,所有脱氧核糖都位于南部结构域,有少量北部构象的混合(0 - 20%)。核Overhauser增强的时间依赖性还揭示了糖苷键处相对均匀的构象(平均角度,χ = -114度)。平均螺旋扭转角度为36.5度(每圈9.8个碱基对)。倾斜角度较小(在0至 -10度范围内),滚动角度难以确定。与相同序列的单晶X射线研究不同,没有证据表明结构存在不对称性。NOE强度和31P弛豫数据都表明在C3 - G4/C9 - G10和A5 - A6/T7 - T8步存在构象异常。贝尼尔以1:1的化学计量比与十二聚体高亲和力结合(298 K时Kd = 1 μM),并导致核苷酸Ado 5 - Cyt 9的糖质子以及两个Ado残基的H2共振的化学位移发生显著变化。结合时在DNA构象中似乎没有诱导出明显的不对称性,也没有嵌入的证据,尽管结合位点不是中心对称的。在贝尼尔的芳香质子与Thy 7和Thy 8的H1'以及Ado 5和Ado 6 H2之间观察到了NOE。这些结果确凿地证明贝尼尔通过小沟结合并紧密靠近核苷酸Ado 6、Thy 7和Thy 8。基于定量NOE光谱和自旋 - 自旋耦合常数的测量,发现核苷酸构象的变化很小。利用观察到的配体与DNA之间的NOE以及推导的糖苷扭转角,我们构建了满足所有现有溶液数据的模型。贝尼尔分子在5'-AAT(与互补链上的5'-ATT相同)位点结合,使得(i)带电的脒基与Ado 6和Ado 18的N3原子之间形成有利的氢键,并且(ii)配体与小沟底部紧密等螺旋。