Minakawa Noriaki, Kojima Naoshi, Hikishima Sadao, Sasaki Takashi, Kiyosue Arihiro, Atsumi Naoko, Ueno Yoshihito, Matsuda Akira
Graduate School of Pharmaceutical Sciences, Hokkaido University, Kita-12, Nishi-6, Kita-ku, Sapporo 060-0812, Japan.
J Am Chem Soc. 2003 Aug 20;125(33):9970-82. doi: 10.1021/ja0347686.
The synthesis and thermal stability of oligodeoxynucleotides (ODNs) containing imidazo[5',4':4,5]pyrido[2,3-d]pyrimidine nucleosides 1-4 (N(N), O(O), N(O), and O(N), respectively) with the aim of developing two sets of new base pairing motifs consisting of four hydrogen bonds (H-bonds) is described. The proposed four tricyclic nucleosides 1-4 were synthesized through the Stille coupling reaction of a 5-iodoimidazole nucleoside with an appropriate 5-stannylpyrimidine derivative, followed by an intramolecular cyclization. These nucleosides were incorporated into ODNs to investigate the H-bonding ability. When one molecule of the tricyclic nucleosides was incorporated into the center of each ODN (ODN I and II, each 17mer), no apparent specificity of base pairing was observed, and all duplexes were less stable than the duplexes containing natural G:C and A:T pairs. On the other hand, when three molecules of the tricyclic nucleosides were consecutively incorporated into the center of each ODN (ODN III and IV, each 17mer), thermal and thermodynamic stabilization of the duplexes due to the specific base pairings was observed. The melting temperature (T(m)) of the duplex containing the N(O):O(N) pairs showed the highest T(m) of 84.0 degrees C, which was 18.2 and 23.5 degrees C higher than that of the duplexes containing G:C and A:T pairs, respectively. This result implies that N(O)and O(N) form base pairs with four H-bonds when they are incorporated into ODNs. The duplex containing N(O):O(N) pairs was markedly stabilized by the assistance of the stacking ability of the imidazopyridopyrimidine bases. Thus, we developed a thermally stable new base pairing motif, which should be useful for the stabilization and regulation of a variety of DNA structures.
为了开发两组由四个氢键组成的新碱基配对基序,本文描述了含有咪唑并[5',4':4,5]吡啶并[2,3 - d]嘧啶核苷1 - 4(分别为N(N)、O(O)、N(O)和O(N))的寡脱氧核苷酸(ODN)的合成及其热稳定性。通过5 - 碘咪唑核苷与合适的5 - 锡基嘧啶衍生物的Stille偶联反应,随后进行分子内环化反应,合成了所提出的四种三环核苷1 - 4。将这些核苷掺入ODN中以研究氢键结合能力。当一分子三环核苷掺入每个ODN(ODN I和II,均为17聚体)的中心时,未观察到明显的碱基配对特异性,并且所有双链体都比含有天然G:C和A:T对的双链体稳定性差。另一方面,当三分子三环核苷连续掺入每个ODN(ODN III和IV,均为17聚体)的中心时,观察到由于特定碱基配对导致的双链体的热稳定性和热力学稳定性。含有N(O):O(N)对的双链体的解链温度(T(m))显示最高T(m)为84.0℃,分别比含有G:C和A:T对的双链体高18.2℃和23.5℃。该结果表明,当N(O)和O(N)掺入ODN中时会形成具有四个氢键的碱基对。含有N(O):O(N)对的双链体在咪唑并吡啶并嘧啶碱基的堆积能力的辅助下显著稳定。因此,我们开发了一种热稳定的新碱基配对基序,这对于各种DNA结构的稳定和调控应该是有用的。