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通过调节核糖核酸酶 III 活性来精细调控酵母中基因表达水平的合成 RNA 模块。

Synthetic RNA modules for fine-tuning gene expression levels in yeast by modulating RNase III activity.

机构信息

Division of Chemistry and Chemical Engineering, 1200 E. California Blvd., MC 210-41, California Institute of Technology, Pasadena, CA 91125, USA.

出版信息

Nucleic Acids Res. 2011 Oct;39(19):8651-64. doi: 10.1093/nar/gkr445. Epub 2011 Jul 6.

Abstract

The design of synthetic gene networks requires an extensive genetic toolbox to control the activities and levels of protein components to achieve desired cellular functions. Recently, a novel class of RNA-based control modules, which act through post-transcriptional processing of transcripts by directed RNase III (Rnt1p) cleavage, were shown to provide predictable control over gene expression and unique properties for manipulating biological networks. Here, we increase the regulatory range of the Rnt1p control elements, by modifying a critical region for enzyme binding to its hairpin substrates, the binding stability box (BSB). We used a high throughput, cell-based selection strategy to screen a BSB library for sequences that exhibit low fluorescence and thus high Rnt1p processing efficiencies. Sixteen unique BSBs were identified that cover a range of protein expression levels, due to the ability of the sequences to affect the hairpin cleavage rate and to form active cleavable complexes with Rnt1p. We further demonstrated that the activity of synthetic Rnt1p hairpins can be rationally programmed by combining the synthetic BSBs with a set of sequences located within a different region of the hairpin that directly modulate cleavage rates, providing a modular assembly strategy for this class of RNA-based control elements.

摘要

合成基因网络的设计需要一个广泛的遗传工具箱来控制蛋白质组件的活性和水平,以实现所需的细胞功能。最近,一类新型的基于 RNA 的控制模块被证明可以通过指导 RNA 内切酶 III(Rnt1p)切割转录本的转录后加工来提供对基因表达的可预测控制,并具有操纵生物网络的独特特性。在这里,我们通过修饰关键的酶结合区域来增加 Rnt1p 控制元件的调节范围,该区域是其发夹底物的结合稳定性盒(BSB)。我们使用高通量、基于细胞的筛选策略,从 BSB 文库中筛选出具有低荧光的序列,从而具有高 Rnt1p 加工效率的序列。鉴定出 16 个独特的 BSB,由于这些序列能够影响发夹切割率并与 Rnt1p 形成活性可切割复合物,因此覆盖了一系列蛋白质表达水平。我们进一步证明,通过将合成的 BSB 与位于发夹内不同区域的一组序列组合,可合理地对合成 Rnt1p 发夹的活性进行编程,该区域序列直接调节切割率,为这一类基于 RNA 的控制元件提供了一种模块化组装策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/108b/3201855/21eb40f21361/gkr445f1.jpg

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