Ike Kohei, Umeno Daisuke
Department of Applied Chemistry and Biotechnology, Graduate School of Engineering, Chiba University, Chiba, Japan.
Methods Mol Biol. 2014;1111:141-52. doi: 10.1007/978-1-62703-755-6_10.
Ever-increasing repertories of RNA-based switching devices are enabling synthetic biologists to construct compact, self-standing, and easy-to-integrate regulatory circuits. However, it is rather rare that the existing RNA-based expression controllers happen to have the exact specification needed for particular applications from the beginning. Evolutionary design of is powerful strategy for quickly tuning functions/specification of genetic switches. Presented here are the steps required for rapid and efficient enrichment of genetic switches with desired specification using recently developed nucleoside kinase-based dual selection system. Here, the library of genetic switches, created by randomizing either the part or the entire sequence coding switching components, is subjected to OFF (negative) selection and ON (positive) selection in various conditions. The entire selection process is completed only by liquid handling, facilitating the parallel and continuous operations of multiple selection projects. This automation-liable platform for genetic selection of functional switches has potential applications for development of RNA-based biosensors, expression controllers, and their integrated forms (genetic circuits).
越来越多基于RNA的开关装置使合成生物学家能够构建紧凑、独立且易于整合的调控电路。然而,现有的基于RNA的表达控制器从一开始就恰好具备特定应用所需的确切规格的情况相当罕见。进化设计是快速调整基因开关功能/规格的有力策略。本文介绍了使用最近开发的基于核苷激酶的双选系统快速有效地富集具有所需规格的基因开关所需的步骤。在这里,通过随机化编码开关组件的部分或整个序列创建的基因开关文库,在各种条件下进行关闭(阴性)选择和开启(阳性)选择。整个选择过程仅通过液体处理即可完成,便于多个选择项目的并行和连续操作。这种适用于功能开关基因选择的自动化平台在基于RNA的生物传感器、表达控制器及其整合形式(基因电路)的开发中具有潜在应用。