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Multiscale modelling reveals higher charge transport efficiencies of DNA relative to RNA independent of mechanism

机译:多尺度模型揭示了更高的费用DNA与RNA的运输效率独立的机制

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In this study, we compare the charge transport properties of multiple double-stranded (ds)RNA sequences with corresponding dsDNA sequences. Recent studies have presented a contradictory picture of relative charge transport efficiencies in A-form DNA : RNA hybrids and dsDNA. Using a multiscale modelling framework, we compute conductance of dsDNA and dsRNA using Landauer formalism in the coherent limit and Marcus-Hush theory in the incoherent limit. We find that dsDNA conducts better than dsRNA in both the charge transport regimes. Our analysis shows that the structural differences in the twist angle and slide of dsDNA and dsRNA are the main reasons behind the higher conductance of dsDNA in the incoherent hopping regime. In the coherent limit however, for the same base pair length, the conductance of dsRNA is higher than that of dsDNA for the morphologies where dsRNA has a smaller end-to-end length relative to that of dsDNA.
机译:在这项研究中,我们比较了电荷传输多个双链RNA (ds)的属性序列与相应dsDNA序列。最近的研究提出了一个矛盾的照片相对电荷传输效率在一种DNA, RNA混合动力车和dsDNA。多尺度建模框架,我们计算电导dsDNA和dsRNA使用蓝道连贯的限制和Marcus-Hush形式主义在不连贯的极限理论。dsDNA进行比的极好电荷传输机制。扭转角和结构差异幻灯片dsDNA和dsRNA是主要的原因在高电导的dsDNA后面不连贯的跳跃政权。然而,对于相同的碱基对长度电导dsRNA高于dsDNA的形态dsRNA较小端到端长度相对于dsDNA。

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