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Structural optimization of pseudorotaxane-forming oligonucleotides for efficient and stable complex formation

机译:伪轮烷形成寡核苷酸的结构优化,可高效稳定地形成复合物。

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摘要

Interlocked structures, such as rotaxane and catenane, combine both static and dynamic properties. To expand their unique properties into the chemical biology field, a spontaneous formation method of the interlocked structures with the target would be ideal. We have previously developed a pseudorotaxane-forming oligo DNA (prfODN) to spontaneously form topological DNA/RNA architectures. In this study, we report the structural optimization of prfODNs for the efficient and stable complex formation. The optimized prfODNs efficiently formed pseudorotaxane structures with a DNA or RNA target, and the yield for the RNA target reached 85% in 5 min. In addition, the optimized prfODNs could form the pseudorotaxane structure with a smaller ring size and the structure significantly increased the kinetic stability. Furthermore, the catenane structure was successfully formed with the optimized prfODNs to provide the conclusive evidence for the formation of the threaded structure. This information will be valuable for developing new chemical methods using functional nucleic acids for antisense oligo nucleotides and DNA/RNA nanotechnology.
机译:互锁结构(例如轮烷和链烷)结合了静态和动态特性。为了将其独特的特性扩展到化学生物学领域,与目标互锁结构的自发形成方法将是理想的。我们以前已经开发了一种伪轮烷形成寡聚DNA(prfODN),以自发形成拓扑DNA / RNA结构。在这项研究中,我们报告prfODNs的结构优化,以有效和稳定地形成复合物。优化的prfODNs可以有效地与DNA或RNA靶标形成拟轮烷结构,RNA靶标的产率在5分钟内达到85%。此外,优化的prfODNs可以形成具有较小环尺寸的拟轮烷结构,并且该结构显着提高了动力学稳定性。此外,使用优化的prfODNs成功地形成了链烷结构,为形成螺纹结构提供了确凿的证据。该信息对于使用反义寡核苷酸的功能性核酸和DNA / RNA纳米技术开发新的化学方法将是有价值的。

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