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首页> 外文期刊>Nucleic acids research >Rationally designed bidirectional promoter improves the evolutionary stability of synthetic genetic circuits
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Rationally designed bidirectional promoter improves the evolutionary stability of synthetic genetic circuits

机译:合理设计的双向启动子提高了合成遗传电路的进化稳定性

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One problem with synthetic genes in genetically engineered organisms is that these foreign DNAs will eventually lose their functions over evolutionary time in absence of selective pressures. This general limitation can restrain the long-term study and industrial application of synthetic genetic circuits. Previous studies have shown that because of their crucial regulatory functions, prokaryotic promoters in synthetic genetic circuits are especially vulnerable to mutations. In this study, we rationally designed robust bidirectional promoters (BDPs), which are self-protected through the complementarity of their overlapping forward and backward promoter sequences on DNA duplex. When the transcription of a target non-essential gene (e.g. green fluorescent protein) was coupled to the transcription of an essential gene (e.g. antibiotic resistance gene) through the BDP, the evolutionary half-time of the gene of interest increases 4–10 times, depending on the strain and experimental conditions used. This design of using BDPs to increase the mutational stability of genetic circuits can be potentially applied to synthetic biology applications in general.
机译:基因改造生物中合成基因的一个问题是,在没有选择压力的情况下,这些外源DNA最终将在进化过程中丧失其功能。这种普遍的局限性会限制合成遗传电路的长期研究和工业应用。先前的研究表明,由于其关键的调控功能,合成基因回路中的原核启动子特别容易发生突变。在这项研究中,我们合理地设计了强大的双向启动子(BDPs),它们通过在DNA双链体上重叠的正向和反向启动子序列的互补性而受到自我保护。当目标非必需基因(例如绿色荧光蛋白)的转录通过BDP与必需基因(例如抗生素抗性基因)的转录偶联时,目标基因的进化半衰期增加了4-10倍,取决于所用的菌株和实验条件。使用BDP来增加基因回路的突变稳定性的这种设计通常可以潜在地应用于合成生物学应用。

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