Gmeiner W H, Rao K E, Rayner B, Vasseur J J, Morvan F, Imbach J L, Lown J W
Department of Chemistry, University of Alberta, Edmonton, Canada.
Biochemistry. 1990 Nov 13;29(45):10329-41. doi: 10.1021/bi00497a007.
The novel hybrid duplex alpha-5'-d[TACACA]-3'.beta-5'-r[AUGUGU]-3' was analyzed extensively by 1D and 2D NMR methods. Two forms of the duplex exist in about an 80:20 ratio. Analysis of the exchangeable imino protons of the major component revealed that three AU and one AT base pair are present in addition to two GC base pairs, confirming that the duplex anneals in parallel orientation. The presence of the AT base pair, which can only be accounted for by a parallel duplex, was confirmed by a selective INEPT experiment, which correlated the thymidine imino proton to its C5 carbon. The lesser antiparallel form could be detected by exchangeable and nonexchangeable proton resonances in both strands. An exchange peak was observed in the NOESY spectrum for the thymidine methyl group resonance in both the predominant and lesser conformations, indicating the lifetime of the individual structures was on the millisecond time scale. The nonexchangeable protons of the predominant duplex were assigned by standard methods. The sugar pucker of the ribonucleosides was determined to be of the "S" type by a pseudorotation analysis according to Altona, with the J-couplings measured from the multiplet components of the phase-sensitive COSY experiment. The NOE pattern observed for the alpha-deoxynucleosides also suggested an S-type sugar pucker. The adoption of an S-type sugar pucker for both strands indicates that, in contrast to RNA.DNA duplexes formed exclusively from beta-nucleotides, the alpha-DNA.beta-RNA duplex may form a B-type helix. The 31P resonances of the alpha and beta strands have very different chemical shifts in the hybrid duplex and the difference persists above the helix melting temperature, indicating an intrinsic difference in 31P chemical shift for nucleotides differing only in the configuration about the glycosidic bond.
新型杂合双链体α-5'-d[TACACA]-3'.β-5'-r[AUGUGU]-3'通过一维和二维核磁共振方法进行了广泛分析。该双链体存在两种形式,比例约为80:20。对主要成分的可交换亚氨基质子进行分析后发现,除了两个GC碱基对外,还存在三个AU碱基对和一个AT碱基对,这证实了双链体以平行方向退火。通过选择性INEPT实验证实了AT碱基对的存在,该实验将胸苷亚氨基质子与其C5碳相关联,而这种碱基对只有在平行双链体中才会出现。较少的反平行形式可以通过两条链中可交换和不可交换的质子共振检测到。在NOESY谱中,无论是主要构象还是较少构象,都观察到了胸苷甲基基团共振的交换峰,这表明各个结构的寿命在毫秒时间尺度上。主要双链体的不可交换质子通过标准方法进行了归属。根据阿尔托纳的假旋转分析,核糖核苷的糖环构象被确定为“S”型,J耦合是从相敏COSY实验的多重峰成分中测量得到的。对于α-脱氧核苷观察到的NOE模式也表明是S型糖环构象。两条链都采用S型糖环构象表明,与仅由β-核苷酸形成的RNA·DNA双链体不同,α-DNA·β-RNA双链体可能形成B型螺旋。在杂合双链体中,α链和β链的31P共振具有非常不同的化学位移,并且这种差异在螺旋解链温度以上仍然存在,这表明仅在糖苷键构型上不同的核苷酸在31P化学位移上存在内在差异。