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DNA nanotechnology: understanding and optimisation through simulation

机译:DNA纳米技术:通过仿真理解和优化

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DNA nanotechnology promises to provide controllable self-assembly on the nanoscale, allowing for the design of static structures, dynamic machines and computational architectures. In this article, I review the state-of-the art of DNA nanotechnology, highlighting the need for a more detailed understanding of the key processes, both in terms of theoretical modelling and experimental characterisation. I then consider coarse-grained models of DNA, mesoscale descriptions that have the potential to provide great insight into the operation of DNA nanotechnology if they are well designed. In particular, I discuss a number of nanotechnological systems that have been studied with oxDNA, a recently developed coarse-grained model, highlighting the subtle interplay of kinetic, thermodynamic and mechanical factors that can determine behaviour. Finally, new results highlighting the importance of mechanical tension in the operation of a two-footed walker are presented, demonstrating that recovery from an unintended 'overstepped' configuration can be accelerated by three to four orders of magnitude by application of a moderate tension to the walker's track. More generally, the walker illustrates the possibility of biasing strand-displacement processes to affect the overall rate.
机译:DNA纳米技术有望在纳米级提供可控的自组装,从而允许设计静态结构,动态机器和计算架构。在本文中,我将回顾DNA纳米技术的最新发展,强调需要从理论建模和实验表征两方面对关键过程进行更详细的了解。然后,我将考虑DNA的粗粒度模型,如果设计得当,它们有可能对DNA纳米技术的运行提供深刻的见解。特别是,我讨论了已用oxDNA(最近开发的粗粒度模型)研究的许多纳米技术系统,强调了可以决定行为的动力学,热力学和机械因素之间的微妙相互作用。最后,提出了新的结果,突出了机械张力在两脚助行器的操作中的重要性,表明通过将适度的张力施加到双脚助行器,可以将意外的“超步”配置恢复三到四个数量级。沃克的足迹。更一般地,助行器说明了偏向链位移过程以影响总速率的可能性。

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