Division of Chemistry and Chemical Engineering, 1200 E. California Blvd., MC 210-41, California Institute of Technology, Pasadena, CA 91125, USA.
Nucleic Acids Res. 2011 Jul;39(12):5299-311. doi: 10.1093/nar/gkr090. Epub 2011 Feb 25.
The programming of cellular networks to achieve new biological functions depends on the development of genetic tools that link the presence of a molecular signal to gene-regulatory activity. Recently, a set of engineered RNA controllers was described that enabled predictable tuning of gene expression in the yeast Saccharomyces cerevisiae through directed cleavage of transcripts by an RNase III enzyme, Rnt1p. Here, we describe a strategy for building a new class of RNA sensing-actuation devices based on direct integration of RNA aptamers into a region of the Rnt1p hairpin that modulates Rnt1p cleavage rates. We demonstrate that ligand binding to the integrated aptamer domain is associated with a structural change sufficient to inhibit Rnt1p processing. Three tuning strategies based on the incorporation of different functional modules into the Rnt1p switch platform were demonstrated to optimize switch dynamics and ligand responsiveness. We further demonstrated that these tuning modules can be implemented combinatorially in a predictable manner to further improve the regulatory response properties of the switch. The modularity and tunability of the Rnt1p switch platform will allow for rapid optimization and tailoring of this gene control device, thus providing a useful tool for the design of complex genetic networks in yeast.
细胞网络的编程以实现新的生物学功能取决于遗传工具的开发,这些工具将分子信号的存在与基因调控活性联系起来。最近,描述了一组工程 RNA 控制器,通过 RNase III 酶 Rnt1p 对转录本的定向切割,使酿酒酵母中的基因表达能够进行可预测的调谐。在这里,我们描述了一种基于将 RNA 适体直接整合到调节 Rnt1p 切割速率的 Rnt1p 发夹区域中的策略,来构建新的一类 RNA 感应-驱动装置。我们证明,配体与整合的适体结构域的结合与足以抑制 Rnt1p 加工的结构变化相关。通过将不同的功能模块整合到 Rnt1p 开关平台中,演示了三种调谐策略,以优化开关动力学和配体响应性。我们进一步证明,这些调谐模块可以以可预测的方式组合实施,以进一步改善开关的调节响应特性。Rnt1p 开关平台的模块化和可调性将允许对该基因控制装置进行快速优化和定制,从而为在酵母中设计复杂的遗传网络提供了有用的工具。