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Robustness analysis and tuning of synthetic gene networks

机译:合成基因网络的鲁棒性分析和调整

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Motivation: The goal of synthetic biology is to design and construct biological systems that present a desired behavior. The construction of synthetic gene networks implementing simple functions has demonstrated the feasibility of this approach. However, the design of these networks is difficult, notably because existing techniques and tools are not adapted to deal with uncertainties on molecular concentrations and parameter values.Results: We propose an approach for the analysis of a class of uncertain piecewise-multiaffine differential equation models. This modeling framework is well adapted to the experimental data currently available. Moreover, these models present interesting mathematical properties that allow the development of efficient algorithms for solving robustness analyses and tuning problems. These algorithms are implemented in the tool RoVerGeNe, and their practical applicability and biological relevance are demonstrated on the analysis of the tuning of a synthetic transcriptional cascade built in Escherichia coli.
机译:动机:合成生物学的目的是设计和构建表现出所需行为的生物系统。实现简单功能的合成基因网络的构建证明了这种方法的可行性。但是,这些网络的设计很困难,特别是因为现有技术和工具无法适应分子浓度和参数值的不确定性。结果:我们提出了一种分析不确定的分段多仿射微分方程模型的方法。该建模框架非常适合当前可用的实验数据。此外,这些模型提供了有趣的数学属性,这些属性允许开发用于解决鲁棒性分析和调整问题的有效算法。这些算法在工具RoVerGeNe中实现,并且通过分析构建在大肠杆菌中的合成转录级联的分析,证明了它们的实际适用性和生物学相关性。

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