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Robust Design of Biological Circuits: Evolutionary Systems Biology Approach

机译:稳健的生物回路设计:进化系统生物学方法

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摘要

Artificial gene circuits have been proposed to be embedded into microbial cells that function as switches, timers, oscillators, and the Boolean logic gates. Building more complex systems from these basic gene circuit components is one key advance for biologic circuit design and synthetic biology. However, the behavior of bioengineered gene circuits remains unstable and uncertain. In this study, a nonlinear stochastic system is proposed to model the biological systems with intrinsic parameter fluctuations and environmental molecular noise from the cellular context in the host cell. Based on evolutionary systems biology algorithm, the design parameters of target gene circuits can evolve to specific values in order to robustly track a desired biologic function in spite of intrinsic and environmental noise. The fitness function is selected to be inversely proportional to the tracking error so that the evolutionary biological circuit can achieve the optimal tracking mimicking the evolutionary process of a gene circuit. Finally, several design examples are given in silico with the Monte Carlo simulation to illustrate the design procedure and to confirm the robust performance of the proposed design method. The result shows that the designed gene circuits can robustly track desired behaviors with minimal errors even with nontrivial intrinsic and external noise.
机译:已经提出将人工基因电路嵌入到微生物细胞中,该微生物细胞起着开关,计时器,振荡器和布尔逻辑门的作用。从这些基本的基因电路组件构建更复杂的系统是生物电路设计和合成生物学的一项关键进步。但是,生物工程基因电路的行为仍然不稳定和不确定。在这项研究中,提出了一种非线性随机系统来模拟具有固有参数波动和来自宿主细胞中细胞环境的环境分子噪声的生物系统。基于进化系统生物学算法,目标基因电路的设计参数可以演变为特定值,以便尽管存在内在和环境噪声,也能够稳健地跟踪所需的生物学功能。选择适应度函数与跟踪误差成反比,以便进化生物电路可以实现模仿基因电路进化过程的最佳跟踪。最后,通过蒙特卡罗模拟在计算机上给出了几个设计示例,以说明设计过程并确认所提出设计方法的鲁棒性能。结果表明,所设计的基因电路即使在内部和外部噪声不小的情况下,也能够以最小的误差可靠地跟踪所需的行为。

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