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右手螺旋DNA中的摆动dG·X·dT碱基对:通过核Overhauser效应光谱的距离几何分析推导的d(C-G-T-G-A-A-T-T-C-G-C-G)双链体的溶液构象

Wobble dG X dT pairing in right-handed DNA: solution conformation of the d(C-G-T-G-A-A-T-T-C-G-C-G) duplex deduced from distance geometry analysis of nuclear Overhauser effect spectra.

作者信息

Hare D, Shapiro L, Patel D J

出版信息

Biochemistry. 1986 Nov 18;25(23):7445-56. doi: 10.1021/bi00371a029.

Abstract

We report below on features of the three-dimensional structure of the d(C-G-T-G-A-A-T-T-C-G-C-G) self-complementary duplex (designated 12-mer GT) containing symmetrical G X T mismatches in the interior of the helix. The majority of the base and sugar protons in the 12-mer GT duplex were assigned by two-dimensional nuclear Overhauser effect (NOESY) spectra in H2O and D2O solution. A set of 92 short (less than 4.5-A) proton-proton distances defined by lower and upper bounds for one symmetrical half of the 12-mer GT duplex were estimated from NOESY data sets recorded as a function of mixing time. These experimental distances combined with nucleotide bond length parameters were embedded into Cartesian space; several trial structures were refined to minimize bond geometry and van der Waals and chirality error. Confidence in this approach is based on the similarity of the refined structures for the solution conformation of the 12-mer GT duplex. The G and T bases pair through two imino-carbonyl hydrogen bonds, and stacking is maintained between the G X T wobble pair and adjacent Watson-Crick G X C pairs. The experimental distance information is restricted to base and sugar protons, and hence structural features such as base pair overlap, glycosidic torsion angles, and sugar pucker are well-defined by this combination of NMR and distance geometry methods. By contrast, we are unable to define the torsion angles about the bonds C3'-O3'-P-O5'-C5'-C4' in the backbone of the nucleic acid.

摘要

我们在下文报告了d(C-G-T-G-A-A-T-T-C-G-C-G)自互补双链体(命名为12聚体GT)的三维结构特征,该双链体在螺旋内部含有对称的G×T错配。12聚体GT双链体中的大多数碱基和糖质子通过H2O和D2O溶液中的二维核Overhauser效应(NOESY)光谱进行了归属。根据作为混合时间函数记录的NOESY数据集,估计了12聚体GT双链体一个对称半体的一组92个短(小于4.5埃)质子-质子距离的上下限。这些实验距离与核苷酸键长参数一起被嵌入笛卡尔空间;对几个试验结构进行了优化,以最小化键几何结构、范德华力和手性误差。对这种方法的信心基于12聚体GT双链体溶液构象的优化结构的相似性。G和T碱基通过两个亚氨基-羰基氢键配对,并且在G×T摆动对和相邻的沃森-克里克G×C对之间保持堆积。实验距离信息仅限于碱基和糖质子,因此,通过这种NMR和距离几何方法的组合,可以很好地确定诸如碱基对重叠、糖苷扭转角和糖环构象等结构特征。相比之下,我们无法确定核酸主链中C3'-O3'-P-O5'-C5'-C4'键的扭转角。

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