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Computational design of synthetic gene circuits with composable parts

机译:具有可组合部分的合成基因电路的计算设计

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Motivation: In principle, novel genetic circuits can be engineered using standard parts with well-understood functionalities. However, no model based on the simple composition of these parts has become a standard, mainly because it is difficult to define signal exchanges between biological units as unambiguously as in electrical engineering. Corresponding concepts and computational tools for easy circuit design in biology are missing.Results: Taking inspiration from (and slightly modifying) ideas in the MIT Registry of Standard Biological Parts, we developed a method for the design of genetic circuits with composable parts. Gene expression requires four kinds of signal carriers: RNA polymerases, ribosomes, transcription factors and environmental messages (inducers or corepressors). The flux of each of these types of molecules is a quantifiable biological signal exchanged between parts. Here, each part is modeled independently by the ordinary differential equations (ODE) formalism and integrated into the software ProMoT (Process Modeling Tool). In this way, we realized a drag and drop tool, where genetic circuits are built just by placing biological parts on a canvas and by connecting them through wires that enable flow of signal carriers, as it happens in electrical engineering. Our simulations of well-known synthetic circuits agree well with published computational and experimental results.
机译:动机:原则上,可以使用具有良好功能的标准零件来设计新颖的遗传回路。但是,没有基于这些部分的简单组成的模型成为标准,这主要是因为难以像在电气工程中那样明确地定义生物单元之间的信号交换。结果:从麻省理工学院标准生物零件注册处的思想(并有一些修改)的灵感中,我们开发了一种可组合零件遗传电路设计的方法。基因表达需要四种信号载体:RNA聚合酶,核糖体,转录因子和环境信息(诱导物或共抑制物)。这些类型的分子中的每一种的通量都是在零件之间交换的可量化的生物信号。在这里,每个零件都通过常微分方程(ODE)形式主义独立建模,并集成到软件ProMoT(过程建模工具)中。通过这种方式,我们实现了拖放工具,在遗传工具中,只需将生物部件放置在画布上,然后通过电线将其连接起来即可构建遗传电路,这可以实现信号载体的流动,就像在电气工程中那样。我们对知名合成电路的仿真与已发表的计算和实验结果非常吻合。

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