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Design and application of cotranscriptional non-enzymatic RNA circuits and signal transducers

机译:共转录非酶RNA电路和信号转导子的设计与应用

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Nucleic acid circuits are finding increasing real-life applications in diagnostics and synthetic biology. Although DNA has been the main operator in most nucleic acid circuits, transcriptionally produced RNA circuits could provide powerful alternatives for reagent production and their use in cells. Towards these goals, we have implemented a particular nucleic acid circuit, catalytic hairpin assembly, using RNA for both information storage and processing. Our results demonstrated that the design principles developed for DNA circuits could be readily translated to engineering RNA circuits that operated with similar kinetics and sensitivities of detection. Not only could purified RNA hairpins perform amplification reactions but RNA hairpins transcribed in vitro also mediated amplification, even without purification. Moreover, we could read the results of the non-enzymatic amplification reactions using a fluorescent RNA aptamer ‘Spinach' that was engineered to undergo sequence-specific conformational changes. These advances were applied to the end-point and real-time detection of the isothermal strand displacement amplification reaction that produces single-stranded DNAs as part of its amplification cycle. We were also able to readily engineer gate structures with RNA similar to those that have previously formed the basis of DNA circuit computations. Taken together, these results validate an entirely new chemistry for the implementation of nucleic acid circuits.
机译:核酸电路在诊断和合成生物学中的实际应用越来越多。尽管DNA是大多数核酸回路中的主要操纵基因,但转录产生的RNA回路可以为试剂生产及其在细胞中的使用提供强大的替代方法。为了实现这些目标,我们已经使用RNA进行信息存储和处理,实现了特定的核酸回路,催化发夹装配。我们的结果表明,为DNA电路开发的设计原理可以很容易地转化为以相似的动力学和检测灵敏度运行的工程RNA电路。纯化的RNA发夹不仅可以进行扩增反应,而且即使不进行纯化,在体外转录的RNA发夹也可以介导扩增。此外,我们可以阅读使用荧光RNA适体“菠菜”(Spinach)进行的非酶促扩增反应的结果,该适体经过改造可以进行序列特异性构象变化。这些进展被应用于等温链置换扩增反应的终点和实时检测,该反应产生单链DNA作为其扩增循环的一部分。我们还能够轻松地用类似于先前已构成DNA电路计算基础的RNA设计带有RNA的门结构。综上所述,这些结果验证了用于实施核酸电路的全新化学方法。

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