Shibata M, Zielinski T J, Rein R
Department of Biophysics, Roswell Park Memorial Institute, Buffalo, New York 14263.
Biopolymers. 1991 Feb 5;31(2):211-32. doi: 10.1002/bip.360310209.
The effect of G.T mispair incorporation into a double-helical environment was examined by molecular dynamics simulation. The 60-ps simulations performed on the two hexanucleotide duplexes d (G3C3)2 and d(G3TC2)2 included 10 Na+ counterions and first hydration shell waters. The resulting backbone torsional angle trajectories were analyzed to select time spans representative of conformational domains. The average backbone angles and helical parameters of the last time span for both duplexes are reported. During the simulation the hexamers retained B-type DNA structures that differed from typical A- or B-DNA forms. The overall helical structures for the two duplexes are vary similar. The presence of G.T mispairs did not alter the overall helical structure of the oligonucleotide duplex. Large propeller twist and buckle angles were obtained for both duplexes. The purine/pyrimidine crossover step showed a large decrease in propeller twist in the normal duplex but not in the mismatch duplex. Upon the formation of wobble mispairs in the mismatched duplex, the guanines moved into the minor groove and the thymines moved into the major groove. This helped prevent purine/purine clash and created a deformation in the relative orientation of the glycosidic bonds. It also exposed the free O4 of the thymines in the major groove and N2 of the guanines in the minor groove to interactions with solvent and counterions. These factors seemed to contribute to the apparently higher rigidity of the mismatched duplex during the simulation.
通过分子动力学模拟研究了G.T错配掺入双螺旋环境的影响。对两条六核苷酸双链体d(G3C3)2和d(G3TC2)2进行的60皮秒模拟包括10个Na +抗衡离子和第一水合层水。分析所得的主链扭转角轨迹,以选择代表构象域的时间跨度。报告了两条双链体最后一个时间跨度的平均主链角和螺旋参数。在模拟过程中,六聚体保留了与典型的A或B-DNA形式不同的B型DNA结构。两条双链体的整体螺旋结构非常相似。G.T错配的存在并没有改变寡核苷酸双链体的整体螺旋结构。两条双链体均获得了较大的螺旋桨扭转角和弯曲角。在正常双链体中嘌呤/嘧啶交叉步骤的螺旋桨扭转大幅降低,但在错配双链体中没有。在错配双链体中形成摆动错配后,鸟嘌呤移入小沟,胸腺嘧啶移入大沟。这有助于防止嘌呤/嘌呤冲突,并在糖苷键的相对取向上产生变形。它还使大沟中的胸腺嘧啶的游离O4和小沟中的鸟嘌呤的N2暴露于与溶剂和抗衡离子的相互作用。这些因素似乎导致了模拟过程中错配双链体明显更高的刚性。