核糖核酸
DNA
生物物理学
动力学
核酸
编码链
复式(建筑)
生物
分支迁移
螺旋(腹足类)
DNA纳米技术
化学
分子生物学
细胞生物学
遗传学
聚合酶
基因
物理
DNA修复
霍利迪路口
量子力学
生态学
蜗牛
作者
Hao Liu,Hong Fan,Francesca Smith,John Goertz,Thomas E. Ouldridge,Molly M. Stevens,Hao Yan,Petr Šulc
标识
DOI:10.1021/acssynbio.1c00336
摘要
In nucleic acid nanotechnology, strand displacement is a widely used mechanism where one strand from a hybridized duplex is exchanged with an invading strand that binds to a toehold, a single-stranded region on the duplex. It is used to perform logic operations on a molecular level, initiate cascaded reactions, or even for in vivo diagnostics and treatments. While systematic experimental studies have been carried out to probe the kinetics of strand displacement in DNA with different toehold lengths, sequences, and mismatch positions, there has not been a comparable investigation of RNA or RNA–DNA hybrid systems. Here, we experimentally study how toehold length, toehold location (5′ or 3′ end of the strand), and mismatches influence the strand displacement kinetics. We observe reaction acceleration with increasing toehold length and placement of the toehold at the 5′ end of the substrate. We find that mismatches closer to the interface of toehold and duplex slow down the reaction more than remote mismatches. A comparison of RNA and DNA displacement with hybrid displacement (RNA invading DNA or DNA invading RNA) is partly explainable by the thermodynamic stabilities of the respective toehold regions, but also suggests that the rearrangement from B-form to A-form helix in the case of RNA invading DNA might play a role in the kinetics.
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