RNA/DNA杂交链位移动力学的强序列依赖性

Francesca G Smith, John P Goertz, Molly M Stevens, Thomas E Ouldridge
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摘要

链位移反应是动态核酸纳米技术的基础。目前的计算模型已经很好地理解和预测了基于dna的位移反应的动力学和热力学特征。相比之下,对RNA/DNA杂交链位移动力学的理解有限,这限制了越来越复杂的RNA/DNA杂交反应网络的设计,这些反应网络具有更严格的动力学调节。鉴于RNA作为诊断性生物标志物的重要性及其在细胞内过程中的关键作用,这一缺陷尤其限制了基于链位移的治疗和诊断的发展。在此,我们对22个RNA/DNA杂交链位移系统进行了表征,系统地改变了几个常见的设计参数,包括支点长度和分支迁移域长度。我们观察到RNA-DNA杂交体和DNA-DNA双链之间的稳定性差异对链位移率有很大影响,等效序列的速率差异可达3个数量级。然而,至关重要的是,这种效应强烈依赖于序列,RNA入侵者在具有高嘌呤含量的RNA链的系统中非常受欢迎,而在具有低嘌呤含量的RNA链的系统中则不受欢迎。这些结果为更一般的设计原则奠定了基础,允许在保持可预测的反应动力学的同时,创建具有新复杂性的从头反应网络。
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Strong sequence dependence in RNA/DNA hybrid strand displacement kinetics
Strand displacement reactions underlie dynamic nucleic acid nanotechnology. The kinetic and thermodynamic features of DNA-based displacement reactions are well understood and well predicted by current computational models. By contrast, understanding of RNA/DNA hybrid strand displacement kinetics is limited, restricting the design of increasingly complex RNA/DNA hybrid reaction networks with more tightly regulated dynamics. Given the importance of RNA as a diagnostic biomarker, and its critical role in intracellular processes, this shortfall is particularly limiting for the development of strand displacement-based therapeutics and diagnostics. Herein, we characterise 22 RNA/DNA hybrid strand displacement systems, systematically varying several common design parameters including toehold length and branch migration domain length. We observe the differences in stability between RNA-DNA hybrids and DNA-DNA duplexes have large effects on strand displacement rates, with rates for equivalent sequences differing by up to 3 orders of magnitude. Crucially, however, this effect is strongly sequence-dependent, with RNA invaders strongly favoured in a system with RNA strands of high purine content, and disfavoured in a system when the RNA strands have low purine content. These results lay the groundwork for more general design principles, allowing for creation of de novo reaction networks with novel complexity while maintaining predictable reaction kinetics.
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