Bandyopadhyay D, Bhattacharyya D
Department of Chemistry, Raja Peary Mohan College, Uttarpara, Hooghly PIN 712258, India.
Biopolymers. 2006 Oct 15;83(3):313-25. doi: 10.1002/bip.20542.
It was shown earlier, from database analysis, model building studies, and molecular dynamics simulations that formation of cross-strand bifurcated or Extra Watson-Crick hydrogen (EWC) bonds between successive base pairs may lead to extra rigidity to DNA double helices of certain sequences. The strengths of these hydrogen bonds are debatable, however, as they do not have standard linear geometry criterion. We have therefore carried out detailed ab initio quantum chemical studies using RHF/6-31G(2d,2p) and B3LYP/6-31G(2p,2d) basis sets to determine strengths of several bent hydrogen bonds with different donor and acceptors. Interaction energy calculations, corrected for the basis set superposition errors, suggest that N-H...O type bent EWC hydrogen bonds are possible along same strands or across the strands between successive base pairs, leading to significant stability (ca. 4-9 kcal/mol). The N-H...N and C-H...O type interactions, however, are not so stabilizing. Hence, consideration of EWC N-H...O H-bonds can lead to a better understanding of DNA sequence directed structural features.
早期通过数据库分析、模型构建研究和分子动力学模拟表明,连续碱基对之间形成跨链分叉或额外的沃森-克里克氢键(EWC)可能会使某些序列的DNA双螺旋具有额外的刚性。然而,这些氢键的强度存在争议,因为它们不具有标准的线性几何标准。因此,我们使用RHF/6-31G(2d,2p)和B3LYP/6-31G(2p,2d)基组进行了详细的从头算量子化学研究,以确定几种具有不同供体和受体的弯曲氢键的强度。经基组叠加误差校正后的相互作用能计算表明,N-H...O型弯曲EWC氢键可能沿着同一条链或在连续碱基对之间跨链形成,从而导致显著的稳定性(约4-9千卡/摩尔)。然而,N-H...N和C-H...O型相互作用的稳定性则没那么高。因此,考虑EWC N-H...O氢键有助于更好地理解DNA序列导向的结构特征。