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Insulated transcriptional elements enable precise design of genetic circuits

机译:绝缘的转录元件可实现遗传电路的精确设计

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Rational engineering of biological systems is often complicated by the complex but unwanted interactions between cellular components at multiple levels. Here we address this issue at the level of prokaryotic transcription by insulating minimal promoters and operators to prevent their interaction and enable the biophysical modeling of synthetic transcription without free parameters. This approach allows genetic circuit design with extraordinary precision and diversity, and consequently simplifies the design-build-test-learn cycle of circuit engineering to a mix-and-match workflow. As a demonstration, combinatorial promoters encoding NOT-gate functions were designed from scratch with mean errors of 96% using our insulated transcription elements. Furthermore, four-node transcriptional networks with incoherent feed-forward loops that execute stripe-forming functions were obtained without any trial-and-error work. This insulation-based engineering strategy improves the resolution of genetic circuit technology and provides a simple approach for designing genetic circuits for systems and synthetic biology.
机译:生物系统的合理工程通常因细胞组分在多个层面上复杂但不想要的相互作用而变得复杂。在这里,我们通过隔离最小限度的启动子和操纵子来防止原核转录子和操纵子之间的相互作用,并实现无自由参数的合成转录的生物物理建模,从而解决了这个问题。这种方法允许遗传电路设计具有非凡的精度和多样性,因此将电路工程的设计,构建,测试,学习周期简化为混合匹配流程。作为演示,使用我们的绝缘转录元件从零开始设计编码NOT门功能的组合启动子,平均错误为96%。此外,无需进行反复试验,即可获得具有执行条带形成功能的不连贯前馈环的四节点转录网络。这种基于绝缘的工程策略提高了遗传电路技术的分辨率,并为设计用于系统和合成生物学的遗传电路提供了一种简单的方法。

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