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Multi-objective optimization framework to obtain model-based guidelines for tuning biological synthetic devices: an adaptive network case

机译:多目标优化框架用于获取基于模型的生物合成设备调整指南:自适应网络案例

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摘要

BackgroundModel based design plays a fundamental role in synthetic biology. Exploiting modularity, i.e. using biological parts and interconnecting them to build new and more complex biological circuits is one of the key issues. In this context, mathematical models have been used to generate predictions of the behavior of the designed device. Designers not only want the ability to predict the circuit behavior once all its components have been determined, but also to help on the design and selection of its biological parts, i.e. to provide guidelines for the experimental implementation. This is tantamount to obtaining proper values of the model parameters, for the circuit behavior results from the interplay between model structure and parameters tuning. However, determining crisp values for parameters of the involved parts is not a realistic approach. Uncertainty is ubiquitous to biology, and the characterization of biological parts is not exempt from it. Moreover, the desired dynamical behavior for the designed circuit usually results from a trade-off among several goals to be optimized.
机译:基于BackgroundModel的设计在合成生物学中起着基本作用。利用模块化,即使用生物部件并将它们互连以建立新的和更复杂的生物电路是关键问题之一。在这种情况下,数学模型已用于生成所设计设备的行为的预测。设计人员不仅希望能够在确定所有电路组件后就能够预测电路的行为,还希望能够帮助设计和选择其生物学部分,即为实验实现提供指导。这相当于获得适当的模型参数值,因为电路行为是由模型结构和参数调整之间的相互作用引起的。但是,确定所涉及零件的参数的明晰值不是现实的方法。不确定性在生物学中无处不在,生物学部分的表征也不例外。此外,所设计电路的期望动态行为通常是由于要优化的几个目标之间的权衡而产生的。

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