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Ribozyme-based insulator parts buffer synthetic circuits from genetic context

机译:基于核酶绝缘体部件缓冲从遗传背景的合成电路

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摘要

Synthetic genetic programs are built from circuits that integrate sensors and implement temporal control of gene expression. Transcriptional circuits are layered by using promoters to carry the signal between circuits. In other words, the output promoter of one circuit serves as the input promoter to the next. Thus, connecting circuits requires physically connecting a promoter to the next circuit. We show that the sequence at the junction between the input promoter and circuit can affect the input-output response (transfer function) of the circuit. A library of putative sequences that might reduce (or buffer) such context effects, which we refer to as ‘insulator parts’, is screened in Escherichia coli. We find that ribozymes that cleave the 5′ untranslated region (5′-UTR) of the mRNA are effective insulators. They generate quantitatively identical transfer functions, irrespective of the identity of the input promoter. When these insulators are used to join synthetic gene circuits, the behavior of layered circuits can be predicted using a mathematical model. The inclusion of insulators will be critical in reliably permuting circuits to build different programs.
机译:合成遗传程序是由集成了传感器并实现基因表达的时间控制的电路构建的。转录电路通过使用启动子来分层,以在电路之间传输信号。换句话说,一个电路的输出启动器充当下一个电路的输入启动器。因此,连接电路需要将启动子物理连接到下一个电路。我们表明,输入启动子和电路之间的连接处的序列会影响电路的的输入-输出响应(传递函数)。在大肠杆菌中筛选了可能减少(或缓冲)此类环境效应的推定序列的文库,我们将其称为“绝缘子部分”。我们发现,切割mRNA的5'非翻译区(5'-UTR)的核酶是有效的绝缘子。无论输入启动子的身份如何,它们都产生定量相同的传递函数。当这些绝缘子用于连接合成基因电路时,可以使用数学模型预测分层电路的行为。包含绝缘体对于可靠地置换电路以构建不同的程序至关重要。

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