单链RNA (ssRNA)构象驱动的电导调制。

IF 8 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Arpan De, Arindam K Das, M P Anantram
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引用次数: 0

摘要

RNA的结构属性,特别是共转录折叠,使RNA折纸能够构建复杂的3D结构,作为构建基于RNA的纳米器件的平台。然而,RNA在分子电子学中的潜力在很大程度上尚未开发,主要是由于其固有的构象波动。尽管这种可变性对精确理解RNA的电导特性提出了挑战,但它也为利用RNA的动态特性来调整基于RNA的分子器件提供了机会。因此,我们在本文中的目标是双重的:(i)构象波动如何影响单链RNA (ssRNA)的电荷传输特性,以及(ii)如何控制这些波动?为此,我们首先基于分子动力学建立了与双链RNA (dsRNA)相比的ssRNA不稳定性基准。随后,我们探索了123种不同构象的量子传输,结果表明ssRNA的平均电导为1.7 × 10-3G0,但标准偏差约为5.2 × 10-3G0。我们证明了ssRNA的传导主要受主干弯曲和核苷酸定位的影响。具体来说,虽然主链弯曲倾向于在端到端磷距离减小时导致更高的电导,但核苷酸定位引入了显著的随机性。为了减轻这种可变性,我们还证明增加盐浓度可以稳定ssRNA,提出了最小化电导波动的可行策略。我们的研究结果表明,如果ssRNA的电导可以在折叠和未折叠状态之间切换,它可以提供两种不同的电导模式。我们预计ssRNA折叠的可编程性和耐久性,再加上它的导电性,可以用于推进分子电子学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Conformation driven conductance modulation in single-stranded RNA (ssRNA).

The structural attributes of RNA, especially co-transcriptional folding, have enabled RNA origami to construct complex 3D architectures, serving as a platform to build RNA-based nanodevices. However, the potential of RNA in molecular electronics is largely unexplored, mainly due to its inherent conformational fluctuations. Although this variability poses challenges for a precise understanding of the conductance properties of RNA, it also offers opportunities for tuning RNA-based molecular devices by exploiting their dynamic nature. Accordingly, our objectives in this paper are twofold: (i) how do conformational fluctuations impact the charge transport properties of single stranded RNA (ssRNA), and (ii) how can these fluctuations be controlled? Toward that end, we first established a benchmark for ssRNA instability compared to double stranded RNA (dsRNA) based on molecular dynamics. Subsequently, we explore quantum transport across 123 distinct conformations, which show that the average conductance of ssRNA is 1.7 × 10-3 G0, but with a high standard deviation of around 5.2 × 10-3G0. We demonstrate that the conductance of ssRNA is influenced primarily by backbone bending and nucleotide positioning. Specifically, while backbone bending tends to result in higher conductance at reduced end-to-end phosphorus distances, nucleotide positioning introduces significant stochasticity. To mitigate this variability, we also demonstrate that increasing the salt concentration can stabilize ssRNA, presenting a viable strategy for minimizing conductance fluctuations. Our findings reveal that if ssRNA conductance can be switched between folded and unfolded states, it can offer two distinct conductance modes. We anticipate the programmability of ssRNA folding and durability, coupled with its conductivity, can be leveraged for advancing molecular electronics.

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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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