首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >How do size-expanded DNA nucleobases enhance duplex stability? Computational analysis of the hydrogen-bonding and stacking ability of xDNA bases
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How do size-expanded DNA nucleobases enhance duplex stability? Computational analysis of the hydrogen-bonding and stacking ability of xDNA bases

机译:大小扩展的DNA核碱基如何增强双链体的稳定性? xDNA碱基氢键键合和堆积能力的计算分析

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Computational chemistry (B3LYP, MP2) is used to study the properties of size-expanded DNA nucleobases generated by inserting a benzene spacer into the natural nucleobases. Although the addition of the spacer does not significantly affect the hydrogen-bonding properties of natural nucleobases, the orientation of the base about the glycosidic bond necessary for Watson-Crick binding is destabilized, which could have implications for the selectivity of expanded bases, as well as the stability of expanded duplexes. Consideration of the (stacked) binding energies in the preferred relative orientation of natural and expanded nucleobases aligned according to their centers of mass reveals that the stacking within natural dimers can be increased by up to 50% upon expansion of one nucleobase and up to 90% upon expansion of two nucleobases. The implications of these findings to the stability of expanded duplexes were revealed by considering simplified models of natural and mixed duplexes composed of four nucleobases. Although intra- and interstrand interactions within double helices are typically less than those predicted when nucleobases are stacked according to their centers of mass, some nucleobases utilize their full stacking potential within double helices, where both intra- and interstrand interactions can be significant. Most importantly, increasing the size of nucleobases within the duplex significantly increases both intra- and interstrand stacking interactions. Specifically, some interactions are double the magnitude of the corresponding intrastrand interactions in natural helices, and even greater increases in interstrand interactions are sometimes found. Thus, our work suggests that mixed duplexes composed of natural bases hydrogen bound to expanded bases may exploit the increase in the inherent stacking ability of the expanded bases in more than one way and thereby afford duplexes with greater stability than natural DNA.
机译:计算化学(B3LYP,MP2)用于研究通过将苯间隔基插入天然核碱基而生成的尺寸扩大的DNA核碱基的性质。尽管添加间隔基不会显着影响天然核碱基的氢键性质,但沃森-克里克结合所必需的糖苷键碱基的取向不稳定,这也可能影响扩展碱基的选择性作为扩展双工的稳定性。根据天然和扩展核碱基按质心排列的优选相对方向的(堆叠)结合能的考虑,发现天然二聚体内部的堆叠可在扩增一个核碱基时最多增加50%,最高可增加90%在两个核碱基扩展时。通过考虑由四个核碱基组成的天然和混合双链体的简化模型,揭示了这些发现对扩展双链体稳定性的影响。尽管双螺旋内的链内和链间相互作用通常比核碱基根据质心堆叠时所预测的相互作用要少,但是某些核碱基利用双螺旋内的全部堆叠潜力,其中链内和链间相互作用都非常重要。最重要的是,增加双链体中核碱基的大小会显着增加链内和链间堆叠相互作用。具体而言,某些相互作用是自然螺旋中相应链内相互作用的强度的两倍,有时甚至发现链间相互作用的增加更大。因此,我们的工作表明,由与氢键结合的天然碱基组成的混合双链体可通过一种以上的方式利用已扩展碱基的固有堆积能力的提高,从而提供比天然DNA更高稳定性的双链体。

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