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首页> 外文期刊>Nucleic acids research >Engineering orthogonal synthetic timer circuits based on extracytoplasmic function σ factors
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Engineering orthogonal synthetic timer circuits based on extracytoplasmic function σ factors

机译:基于胞外功能σ因子的正交正交合成计时器电路

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The rational design of synthetic regulatory circuits critically hinges on the availability of orthogonal and well-characterized building blocks. Here, we focus on extracytoplasmic function (ECF) σ factors, which are the largest group of alternative σ factors and hold extensive potential as synthetic orthogonal regulators. By assembling multiple ECF σ factors into regulatory cascades of varying length, we benchmark the scalability of the approach, showing that these ‘autonomous timer circuits’ feature a tuneable time delay between inducer addition and target gene activation. The implementation of similar timers in Escherichia coli and Bacillus subtilis shows strikingly convergent circuit behavior, which can be rationalized by a computational model. These findings not only reveal ECF σ factors as powerful building blocks for a rational, multi-layered circuit design, but also suggest that ECF σ factors are universally applicable as orthogonal regulators in a variety of bacterial species.
机译:合成调节电路的合理设计关键取决于正交和特征明确的构建块的可用性。在这里,我们关注胞外功能(ECF)σ因子,它们是最大的替代σ因子组,具有作为合成正交调节因子的广泛潜力。通过将多个ECFσ因子组装到不同长度的调节级联中,我们对该方法的可扩展性进行了基准测试,表明这些“自主计时器电路”在添加诱导物和激活靶基因之间具有可调节的时间延迟。在大肠杆菌和枯草芽孢杆菌中类似计时器的实现显示出惊人的收敛电路行为,可以通过计算模型对其进行合理化。这些发现不仅揭示了ECFσ因子是进行合理的多层电路设计的有力基础,而且还表明ECFσ因子可广泛用作各种细菌物种中的正交调节剂。

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