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首页> 外文期刊>Nucleic acids research >Free energy landscape of salt-actuated reconfigurable DNA nanodevices
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Free energy landscape of salt-actuated reconfigurable DNA nanodevices

机译:盐致动的可重新配置DNA纳米型纳米模型的自由能景观

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Achieving rapid, noninvasive actuation of DNA structures is critical to expanding the functionality of DNA nanotechnology. A promising actuation approach involves introducing multiple, short pairs of single-stranded DNA overhangs to components of the structure and triggering hybridization or dissociation of the overhangs via changes in solution ionic conditions to drive structural transitions. Here, we reveal the underlying basis of this new approach by computing via molecular simulations the free energy landscape of DNA origami hinges actuated between open and closed states. Our results reveal how the overhangs collectively introduce a sharp free-energy minimum at the closed state and a broad energy barrier between open and closed states and how changes in ionic conditions modulate these features of the landscape to drive actuation towards the open or closed state. We demonstrate the critical role played by hinge confinement in stabilizing the hybridized state of the overhangs and magnifying the energy barrier to dissociation. By analyzing how the distribution of overhangs and their length and sequence modulate the energy landscape, we obtain design rules for tuning the actuation behavior. The molecular insights obtained here should be applicable to a broad range of systems involving DNA hybridization within confined systems.
机译:达到快速,非侵入性DNA结构的致动对于扩大DNA纳米技术的功能至关重要。有希望的致动方法涉及将多个短对的单链DNA悬垂突出到结构的组分,并通过溶液离子条件的变化来引发悬垂的杂交或解离,以驱动结构转变。在这里,我们通过分子模拟通过分子模拟来揭示这种新方法的潜在基础。开放和封闭状态之间的DNA折纸铰链的自由能景观。我们的结果揭示了悬垂如何在闭合状态下集体引入尖锐的自由能量,以及在开放和封闭状态之间的宽能力屏障以及离子条件的变化如何调节景观的这些特征以驱动朝向开放或关闭状态的驱动。我们展示了铰链限制在稳定悬垂的杂交状态和放大能量屏障下解离的关键作用。通过分析悬垂的分布及其长度和序列调制能量景观的方式,我们获得了调整致动行为的设计规则。这里获得的分子见解应该适用于涉及狭窄系统内的DNA杂交的广泛系统。

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