Fuentes-Cabrera M, Sumpter Bobby G, Lipkowski Pawel, Wells Jack C
Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, P.O. Box 2008, Oak Ridge, Tennessee 37831-6494, USA.
J Phys Chem B. 2006 Mar 30;110(12):6379-84. doi: 10.1021/jp057356n.
xDNA and yDNA are new classes of synthetic nucleic acids characterized by having base-pairs with one of the bases larger than the natural congeners. Here these larger bases are called x- and y-bases. We recently investigated and reported the structural and electronic properties of the x-bases (Fuentes-Cabrera et al. J. Phys. Chem. B 2005, 109, 21135-21139). Here we extend this study by investigating the structure and electronic properties of the y-bases. These studies are framed within our interest that xDNA and yDNA could function as nanowires, for they could have smaller HOMO-LUMO gaps than natural DNA. The limited amount of experimental structural data in these synthetic duplexes makes it necessary to first understand smaller models and, subsequently, to use that information to build larger models. In this paper, we report the results on the chemical and electronic structure of the y-bases. In particular, we predict that the y-bases have smaller HOMO-LUMO gaps than their natural congeners, which is an encouraging result for it indicates that yDNA could have a smaller HOMO-LUMO gap than natural DNA. Also, we predict that the y-bases are less planar than the natural ones. Particularly interesting are our results corresponding to yG. Our studies show that yG is unstable because it is less aromatic and has a Coulombic repulsion that involves the amino group, as compared with a more stable tautomer. However, yG has a very small HOMO-LUMO gap, the smallest of all the size-expanded bases we have considered. The results of this study provide useful information that may allow the synthesis of an yG-mimic that is stable and has a small HOMO-LUMO gap.
xDNA和yDNA是新型合成核酸,其特征在于碱基对中的一个碱基比天然同类碱基更大。在这里,这些更大的碱基被称为x碱基和y碱基。我们最近研究并报道了x碱基的结构和电子性质(富恩特斯 - 卡布雷拉等人,《物理化学杂志B》,2005年,第109卷,21135 - 21139页)。在此,我们通过研究y碱基的结构和电子性质来扩展这项研究。这些研究基于我们的兴趣,即xDNA和yDNA可能作为纳米线发挥作用,因为它们可能比天然DNA具有更小的最高占据分子轨道(HOMO)与最低未占分子轨道(LUMO)能隙。这些合成双链体中有限的实验结构数据使得有必要首先了解较小的模型,随后利用这些信息构建更大的模型。在本文中,我们报告了y碱基的化学和电子结构的研究结果。特别是,我们预测y碱基比其天然同类碱基具有更小的HOMO - LUMO能隙,这是一个令人鼓舞的结果,因为这表明yDNA可能比天然DNA具有更小的HOMO - LUMO能隙。此外,我们预测y碱基比天然碱基的平面性更低。与更稳定的互变异构体相比特别有趣的是我们对应于yG的结果。我们的研究表明yG不稳定,因为它的芳香性较低,并且与氨基存在库仑排斥。然而,yG具有非常小的HOMO - LUMO能隙,是我们所考虑的所有尺寸扩展碱基中最小的。这项研究的结果提供了有用的信息,可能有助于合成一种稳定且具有小HOMO - LUMO能隙的yG模拟物。