Berens Christian, Groher Florian, Suess Beatrix
Institute of Molecular Pathogenesis, Friedrich-Loeffler-Institut, Federal Research Institute for Animal Health, Jena, Germany.
Biotechnol J. 2015 Feb;10(2):246-57. doi: 10.1002/biot.201300498.
RNA utilizes many different mechanisms to control gene expression. Among the regulatory elements that respond to external stimuli, riboswitches are a prominent and elegant example. They consist solely of RNA and couple binding of a small molecule ligand to the so-called "aptamer domain" with a conformational change in the downstream "expression platform" which then determines system output. The modular organization of riboswitches and the relative ease with which ligand-binding RNA aptamers can be selected in vitro against almost any molecule have led to the rapid and widespread adoption of engineered riboswitches as artificial genetic control devices in biotechnology and synthetic biology over the past decade. This review highlights proof-of-principle applications to demonstrate the versatility and robustness of engineered riboswitches in regulating gene expression in pro- and eukaryotes. It then focuses on strategies and parameters to identify aptamers that can be integrated into synthetic riboswitches that are functional in vivo, before finishing with a reflection on how to improve the regulatory properties of engineered riboswitches, so that we can not only further expand riboswitch applicability, but also finally fully exploit their potential as control elements in regulating gene expression.
RNA利用多种不同机制来控制基因表达。在响应外部刺激的调控元件中,核糖开关是一个突出且精妙的例子。它们仅由RNA组成,将小分子配体与所谓“适体结构域”的结合与下游“表达平台”的构象变化相耦合,进而决定系统输出。核糖开关的模块化组织以及在体外针对几乎任何分子选择配体结合RNA适体相对容易的特点,导致在过去十年中,工程化核糖开关作为生物技术和合成生物学中的人工遗传控制装置迅速且广泛地被采用。本综述重点介绍了原理验证应用,以展示工程化核糖开关在原核生物和真核生物中调控基因表达的多功能性和稳健性。接着,它聚焦于识别可整合到在体内发挥功能的合成核糖开关中的适体的策略和参数,最后思考如何改善工程化核糖开关的调控特性,以便我们不仅能进一步扩大核糖开关的适用性,还能最终充分发挥它们作为调控基因表达的控制元件的潜力。