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An engineered small RNA-mediated genetic switch based on a ribozyme expression platform

机译:基于核酶表达平台的工程化小RNA介导的遗传开关

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摘要

An important requirement for achieving many goals of synthetic biology is the availability of a large repertoire of reprogrammable genetic switches and appropriate transmitter molecules. In addition to engineering genetic switches, the interconnection of individual switches becomes increasingly important for the construction of more complex genetic networks. In particular, RNA-based switches of gene expression have become a powerful tool to post-transcriptionally program genetic circuits. RNAs used for regulatory purposes have the advantage to transmit, sense, process and execute information. We have recently used the hammerhead ribozyme to control translation initiation in a small molecule-dependent fashion. In addition, riboregulators have been constructed in which a small RNA acts as transmitter molecule to control translation of a target mRNA. In this study, we combine both concepts and redesign the hammerhead ribozyme to sense small trans-acting RNAs (taRNAs) as input molecules resulting in repression of translation initiation in Escherichia coli. Importantly, our ribozyme-based expression platform is compatible with previously reported artificial taRNAs, which were reported to act as inducers of gene expression. In addition, we provide several insights into key requirements of riboregulatory systems, including the influences of varying transcriptional induction of the taRNA and mRNA transcripts, 5′-processing of taRNAs, as well as altering the secondary structure of the taRNA. In conclusion, we introduce an RNA-responsive ribozyme-based expression system to the field of artificial riboregulators that can serve as reprogrammable platform for engineering higher-order genetic circuits.
机译:实现合成生物学的许多目标的重要要求是有大量可重编程的遗传开关和合适的递质分子。除了工程遗传开关外,单个开关的互连对于构建更复杂的遗传网络也变得越来越重要。特别是,基于RNA的基因表达开关已成为转录后编程遗传电路的强大工具。用于监管目的的RNA具有传输,检测,处理和执行信息的优势。我们最近使用锤头状核酶以小分子依赖性方式控制翻译起始。另外,已经构建了核糖调节剂,其中小RNA充当递质分子以控制靶mRNA的翻译。在这项研究中,我们结合了这两个概念并重新设计了锤头状核酶,以将小的反式作用RNA(taRNA)感知为输入分子,从而导致大肠杆菌中翻译起始的抑制。重要的是,我们基于核酶的表达平台与先前报道的人工taRNA兼容,后者据报道可充当基因表达的诱导剂。此外,我们对核糖调节系统的关键要求提供了一些见解,包括taRNA和mRNA转录物的转录诱导变化,taRNA的5'加工以及改变taRNA的二级结构的影响。总之,我们将基于RNA响应核酶的表达系统引入到人工核糖调节剂领域,该系统可作为工程高阶遗传电路的可重编程平台。

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