Jiang S P, Raghunathan G, Ting K L, Xuan J C, Jernigan R L
Laboratory of Mathematical Biology, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892.
J Biomol Struct Dyn. 1994 Oct;12(2):367-82. doi: 10.1080/07391102.1994.10508746.
Ab initio molecular orbital calculations with the STO-3G and 4-31G basis sets are performed to study the geometries and interactions of natural and "novel" Watson-Crick base pairs, as well as some non-Watson-Crick base pairs. First the optimized geometries of bases are determined using the STO-3G basis set, and then for the base pairs with the STO-3G and 4-31G basis sets. Interaction energies of these base pairs are evaluated, and their relative stabilities are discussed. Hydrogen bond features, partial charges and dipole moments of the base pairs are described. The calculated stabilities are in reasonable agreement with the limited available experimental data from thermal melting studies. Hydrogen bond geometries at the 4-31G level are in good agreement with the crystal structure data. The order of relative stabilities is found to be: iG:iC > G:C > G:T* > rG:rC > A*:C > Am:U > tau:kappa > chi:kappa > G*:T > A:C* > A:U = A:T where, A*, T*, G* and C* are tautomers, iG and iC are iso-G and iso-C, Am is 2-amino adenine, chi is xanthosine, kappa is 2,4-diaminopyrimidine, tau is 7-methyl oxoformycin B, rG is modified guanine with substitutions at positions 5 and 7, and rC is modified cytosine with a substitution at position 6. Pairing strengths with modified bases may affect the efficiency of protein production.
使用STO - 3G和4 - 31G基组进行从头算分子轨道计算,以研究天然和“新型”沃森 - 克里克碱基对以及一些非沃森 - 克里克碱基对的几何结构和相互作用。首先使用STO - 3G基组确定碱基的优化几何结构,然后对使用STO - 3G和4 - 31G基组的碱基对进行研究。评估这些碱基对的相互作用能,并讨论它们的相对稳定性。描述了碱基对的氢键特征、部分电荷和偶极矩。计算得到的稳定性与热变性研究中有限的可用实验数据合理吻合。4 - 31G水平的氢键几何结构与晶体结构数据吻合良好。发现相对稳定性顺序为:iG:iC > G:C > G:T* > rG:rC > A*:C > Am:U > tau:kappa > chi:kappa > G*:T > A:C* > A:U = A:T,其中,A*、T*、G和C是互变异构体,iG和iC是异鸟嘌呤和异胞嘧啶,Am是2 - 氨基腺嘌呤,chi是黄苷,kappa是2,4 - 二氨基嘧啶,tau是7 - 甲基氧代霉素B,rG是在5和7位有取代的修饰鸟嘌呤,rC是在6位有取代的修饰胞嘧啶。与修饰碱基的配对强度可能会影响蛋白质生产的效率。