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From Boolean Network Model to Continuous Model Helps in Design of Functional Circuits

机译:从布尔网络模型到连续模型有助于功能电路的设计

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摘要

Computational circuit design with desired functions in a living cell is a challenging task in synthetic biology. To achieve this task, numerous methods that either focus on small scale networks or use evolutionary algorithms have been developed. Here, we propose a two-step approach to facilitate the design of functional circuits. In the first step, the search space of possible topologies for target functions is reduced by reverse engineering using a Boolean network model. In the second step, continuous simulation is applied to evaluate the performance of these topologies. We demonstrate the usefulness of this method by designing an example biological function: the SOS response of E. coli. Our numerical results show that the desired function can be faithfully reproduced by candidate networks with different parameters and initial conditions. Possible circuits are ranked according to their robustness against perturbations in parameter and gene expressions. The biological network is among the candidate networks, yet novel designs can be generated. Our method provides a scalable way to design robust circuits that can achieve complex functions, and makes it possible to uncover design principles of biological networks.
机译:在活细胞中具有所需功能的计算电路设计在合成生物学中是一项艰巨的任务。为了实现此任务,已经开发了许多针对小型网络或使用进化算法的方法。在这里,我们提出了两步方法来简化功能电路的设计。第一步,通过使用布尔网络模型的逆向工程来减少目标函数可能的拓扑搜索空间。在第二步中,应用连续仿真来评估这些拓扑的性能。我们通过设计示例生物学功能:大肠杆菌的SOS反应,证明了该方法的有效性。我们的数值结果表明,具有不同参数和初始条件的候选网络可以忠实地再现所需的功能。根据可能的电路根据其对参数和基因表达的扰动的鲁棒性进行排序。生物网络是候选网络之一,但仍可以生成新颖的设计。我们的方法提供了一种可扩展的方法来设计可实现复杂功能的鲁棒电路,并有可能揭示生物网络的设计原理。

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