Patel D J, Shapiro L, Kozlowski S A, Gaffney B L, Jones R A
J Mol Biol. 1986 Apr 20;188(4):677-92. doi: 10.1016/s0022-2836(86)80014-6.
High-resolution proton and phosphorus nuclear magnetic resonance studies are reported on the self-complementary d(C1-G2-N3-G4-A5-A6-T7-T8-C9-O6meG10-C11-G12) duplexes (henceforth called O6meG X A 12-mer when N3 = A3 and O6meG X G 12-mer when N3 = G3), which contain symmetry-related A3 X O6meG10 and G3 X O6meG10 interactions in the interior of the helices. We observe inter-base-pair nuclear Overhauser effects (NOE) between the base protons at the N3 X O6meG10 modification site and protons of flanking G2 X C11 and G4 X C9 base-pairs, indicative of the stacking of N3 and O6meG10 bases in both O6meG X A 12-mer and O6meG X G 12-mer duplexes. We have assigned all the base and a majority of the sugar protons from two-dimensional proton-correlated and nuclear Overhauser effect experiments on the O6meG X A 12-mer duplex and O6meG X G 12-mer duplex in solution. The observed NOEs establish that the A3 and O6meG10 at the modification site and all other residues adopt the anti configuration about the glycosidic bond, and that the O6meG X A 12-mer forms a right-handed duplex. The interaction between the bulky purine A3 and O6meG10 residues in the anti orientation results in large proton chemical shift perturbations at the (G2-A3-G4) X (C9-O6meG10-C11) segments of the helix. By contrast, we demonstrate that the O6meG10 residue adopts a syn configuration, while all other bases adopt an anti configuration about the glycosidic bond in the right-handed O6meG X G 12-mer duplex. This results in altered NOE patterns between the base protons of O6meG10 and the base and sugar protons of flanking C9 and C11 residues in the O6meG X G 12-mer duplex. The phosphorus backbone is perturbed at the modification site in both duplexes, since the phosphorus resonances are dispersed over 2 parts per million in the O6meG X A 12-mer and over 1 part per million in the O6meG X G 12-mer compared to a 0.5 part per million dispersion for an unperturbed DNA helix. We propose tentative pairing schemes for the A3 X O6meG10 and G3 X O6meG10 interactions in the above dodecanucleotide duplexes.
报道了对自我互补的d(C1-G2-N3-G4-A5-A6-T7-T8-C9-O6meG10-C11-G12)双链体(当N3 = A3时,此后称为O6meG X A 12聚体;当N3 = G3时,称为O6meG X G 12聚体)进行的高分辨率质子和磷核磁共振研究,该双链体在螺旋内部包含对称相关的A3 X O6meG10和G3 X O6meG10相互作用。我们观察到在N3 X O6meG10修饰位点的碱基质子与侧翼G2 X C11和G4 X C9碱基对的质子之间存在碱基对间核Overhauser效应(NOE),这表明在O6meG X A 12聚体和O6meG X G 12聚体双链体中N3和O6meG10碱基发生了堆积。我们通过对溶液中的O6meG X A 12聚体双链体和O6meG X G 12聚体双链体进行二维质子相关和核Overhauser效应实验,确定了所有碱基以及大多数糖质子的归属。观察到的NOE表明,修饰位点的A3和O6meG10以及所有其他残基在糖苷键周围呈反式构象,并且O6meG X A 12聚体形成右手双链体。反式取向的大嘌呤A3和O6meG10残基之间的相互作用导致螺旋的(G2-A3-G4) X (C9-O6meG10-C11)片段处出现大的质子化学位移扰动。相比之下,我们证明在右手O6meG X G 12聚体双链体中,O6meG10残基呈顺式构象,而所有其他碱基在糖苷键周围呈反式构象。这导致O6meG X G 12聚体双链体中O6meG10的碱基质子与侧翼C9和C11残基的碱基及糖质子之间的NOE模式发生改变。在这两种双链体的修饰位点,磷主链都受到了扰动,因为与未受扰动的DNA螺旋的0.5 ppm分散相比,O6meG X A 12聚体中磷共振分散超过2 ppm,O6meG X G 12聚体中超过1 ppm。我们为上述十二核苷酸双链体中A3 X O6meG10和G3 X O6meG10相互作用提出了初步的配对方案。