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DNA base pair stacks with high electric conductance: A systematic structural search

机译:具有高电导率的DNA碱基对堆:系统的结构搜索

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摘要

We report a computational search for DNA φ-stack structures exhibiting high electric conductance in the hopping regime, based on the INDO/S calculations of electronic coupling and the method of data analysis called k-means clustering. Using homogeneous poly(G)-poly(C) and poly(A)-poly(T) stacks as the simplest structural models, we identify the configurations of neighboring G:C and A:T pairs that allow strong electronic coupling and, therefore, molecular electric conductance much larger than the values reported for the corresponding reference systems in the literature. A computational approach for modeling the impact of thermal fluctuations on the averaged dimer structure was also proposed and applied to the [(G:C),(G:C)] and [(A:T),(A:T)] duplexes. The results of this work may provide guidance for the construction of DNA devices and DNA-based elements of nanoscale molecular circuits. Several factors that cause changes of step parameters favorable to the formation of the predicted stack conformation with high electric conductance of DNA molecules are also discussed; favorable geometries may enhance the conductivity by factors as large as 15.
机译:我们报告了基于电子耦合的INDO / S计算和称为k-均值聚类的数据分析方法,对在跃迁状态下表现出高电导率的DNAφ-堆栈结构进行了计算搜索。使用均质的poly(G)-poly(C)和poly(A)-poly(T)堆栈作为最简单的结构模型,我们确定了允许强电子耦合的相邻G:C和A:T对的构型,因此,分子电导率远大于文献中相应参考系统报道的值。还提出了一种模拟热涨落对平均二聚体结构影响的计算方法,并将其应用于[(G:C),(G:C)]和[(A:T),(A:T)]双链体。这项工作的结果可能为构建DNA器件和纳米分子电路的基于DNA的元件提供指导。还讨论了导致阶梯参数变化的几个因素,这些参数有利于DNA分子的高电导率形成预期的堆栈构象。有利的几何形状可以将导电率提高15倍。

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