Lewis J P, Sankey O F
Department of Physics and Astronomy, Arizona State University, Tempe 85287-1504, USA.
Biophys J. 1995 Sep;69(3):1068-76. doi: 10.1016/S0006-3495(95)79980-5.
A first principles model for calculating hydrogen bonding interactions, previously applied to water, is here applied to the more difficult problem of interactions between DNA bases. We first consider the energetics and geometry for the A-T and the G-C basepairs, comparing our results to other calculated results as well as to experiment. Next, we study the interactions of isomorphic DNA base triplet structures, which are important because of their suggested role in the recombination process. We find that energetically the third base in the triplet tends to favor a position along the dyadic axis, where it is hydrogen bonded to both bases in the duplex.
一种先前应用于水的用于计算氢键相互作用的第一性原理模型,在此被应用于DNA碱基之间相互作用这个更具挑战性的问题。我们首先考虑A-T和G-C碱基对的能量学和几何学,将我们的结果与其他计算结果以及实验结果进行比较。接下来,我们研究同构DNA碱基三联体结构的相互作用,由于它们在重组过程中所暗示的作用,这些相互作用很重要。我们发现,从能量角度来看,三联体中的第三个碱基倾向于处于沿二元轴的位置,在该位置它与双链体中的两个碱基都形成氢键。