Gao X, Jeffs P W
Glaxo Inc., Research Institute, Research Triangle Park, NC 27709.
J Biomol NMR. 1994 Jan;4(1):17-34. doi: 10.1007/BF00178333.
The DNA.DNA duplex d(CGCGTTSCH2OTTGCGC).d(GCGCAAAACGCG) (designated duplex III) containing a 3'-thioformacetal (3'-TFMA) linkage in the center of the sequence was characterized in detail by two- and three-dimensional homonuclear NMR spectroscopy. The NMR results were analyzed and compared with those of two duplexes of the same sequence: One is an unmodified reference sequence and the other contains a formacetal (OCH2O) linkage at the central T--T step (designated duplex I and duplex II, respectively). In general, the NMR spectra of duplex III closely resemble those of the analogous duplexes I and II, suggesting an overall B-type structure adopted by the 3'-TFMA-modified duplex III. Nonetheless, the detection of several distinct spectral features originating from the protons at the T6(3'-SCH2O)T7 modification site is indicative of a local conformation that is clearly different from the corresponding region in duplexes I and II. The 3'-thioformacetal linker, in contrast to the formacetal (FMA) linkage, cannot be accommodated in a conformation usually found in natural nucleic acid duplexes. As a consequence, the 3'-TFMA-modified T6 sugar adopts an O4'-endo form (an intermediate structure between the usual C2'-endo and C3'-endo forms). This change is accompanied by a change in the epsilon (C4'-C3'-S3'-CH2) dihedral angle and by subsequent adjustments of other torsion angles along the backbone. Notably, this conformational readjustment at the T6-T7 backbone linkage is localized; its collective result has negligible effect on base-base stacking of the T6 and T7 residues. A close examination of the COSY data in all three duplexes reveals a subtle variation in sugar geometry, with more S-type character adopted by the modified duplexes II and III. The results of this study illustrate that, although the difference between FMA and 3'-TFMA linkages is merely in the substitution of the T6(O3') in the former by a sulfur atom in the latter, the stereoelectronic difference in a single atom can induce significant local structural distortion in an otherwise well-structured oligonucleotide duplex.
对序列中心含有3'-硫代缩醛(3'-TFMA)连接的DNA.DNA双链体d(CGCGTTSCH2OTTGCGC).d(GCGCAAAACGCG)(命名为双链体III),通过二维和三维同核核磁共振光谱进行了详细表征。对核磁共振结果进行了分析,并与相同序列的两个双链体的结果进行了比较:一个是未修饰的参考序列,另一个在中心T--T步含有一个缩醛(OCH2O)连接(分别命名为双链体I和双链体II)。总体而言,双链体III的核磁共振光谱与类似的双链体I和II的光谱非常相似,表明3'-TFMA修饰的双链体III采用了整体的B型结构。尽管如此,在T6(3'-SCH2O)T7修饰位点检测到的几个源自质子的明显光谱特征表明,其局部构象与双链体I和II中的相应区域明显不同。与缩醛(FMA)连接相比,3'-硫代缩醛连接不能以天然核酸双链体中常见的构象存在。因此,3'-TFMA修饰的T6糖采用O4'-内型(介于通常的C2'-内型和C3'-内型之间的中间结构)。这种变化伴随着ε(C4'-C3'-S3'-CH2)二面角的变化以及主链上其他扭转角的后续调整。值得注意的是,T6-T7主链连接处的这种构象重新调整是局部的;其总体结果对T6和T7残基的碱基堆积影响可忽略不计。对所有三个双链体的COSY数据进行仔细检查发现,糖的几何结构存在细微变化,修饰的双链体II和III采用了更多的S型特征。本研究结果表明,尽管FMA和3'-TFMA连接之间的差异仅在于前者中的T6(O3')被后者中的硫原子取代,但单个原子的立体电子差异可在原本结构良好的寡核苷酸双链体中引起显著的局部结构畸变。