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Influence of temperature and base-pair twisting motion frequency on electron transport of guanine-quadruplex DNA molecule

机译:温度和碱基扭转运动频率对鸟嘌呤 - 四翻杂交DNA分子电子传输的影响

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Electron transport of Guanin-quadruplex DNA (G4-DNA) molecule has been studied by considering temperature and twisting motion frequency. The calculation is done for 32 base pairs long G4 DNA molecules. G4-DNA molecule is a collection of G-quartet, a square structure consists of four G (guanine) base with a G base is located at each corner of the square, stacked on top each other. G4-DNA molecules are modeled using tight binding Hamiltonian. The calculation of transport electron in the form of transmission probability is carried out by employing transfer matrix technique in concert with scattering matrix method. Landauer-Buttiker formalism is called in service when computing the I-V characteristics of the molecule from transmission probability. The twisting angle of base pairs is correlated to interbase electron hopping constant within Slater-Koster-Harrison semi-empirical theory. The calculation is done for several twisting motion frequencies and temperatures. The result shows that electron transport on G4-DNA depends on twisting motion frequency of bases, such that as the frequency increases, the current and transmission probability also increases. On the contrary, the current and transmission probability decreases as temperature increases.
机译:鸟嘌呤四链DNA(G4-DNA)分子的电子传输已经研究通过考虑温度和扭转运动的频率。该计算为32个碱基对长的G4的DNA分子进行。 G4-DNA分子是G-四的集合,方形结构由四G(鸟嘌呤)基与G碱基位于正方形的每个拐角,堆叠在顶部彼此。 G4-DNA分子使用紧结合哈密顿建模。在传输概率的形式输送电子的计算是通过采用转移矩阵技术在音乐会具有散射矩阵的方法进行。计算从传输概率分子的I-V特性时兰道尔-Buttiker形式主义被调用的服务。碱基对的扭转角度是相关于IB的电子跳跃斯莱特-科斯特-哈里森半经验理论内是恒定的。该计算是几个扭绞运动的频率和温度下进行。结果表明,在G4-DNA的电子传输取决于扭转的碱基运动频率,使得随着频率的增加,电流和传输概率也增大。相反,当前的和传输概率随着温度的升高而降低。

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