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Evolving connectivity between genetic oscillators and switches using evolutionary algorithms

机译:使用进化算法的遗传振荡器和开关之间不断发展的连通性

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Although hypothesised there has been little investigation into how complex gene regulatory networks can evolve from simple regulatory motifs through modularisation, duplication and specialisation processes. In order to simulate natural evolution in a computational environment we evolve the connection between a genetic oscillator and a toggle switch motif using an evolutionary algorithm. We observe a connectivity preference between the motifs that is dependent on the coupling arrangement rather than on objective set-up. In addition, our results indicate the existence of a threshold in the connection parameters for the resulting dynamics for a specific coupling arrangement and objective set-up. We demonstrate that simple motifs can successfully be coupled through artificial evolution to form more complex, modular regulatory networks. These findings support, in principle, the above-mentioned hypothesis on evolutionary mechanisms in biological systems.
机译:尽管有假设,但很少有人研究复杂的基因调控网络如何从简单的调控基序通过模块化,复制和专门化过程演变而来。为了模拟计算环境中的自然进化,我们使用进化算法来进化遗传振荡器和拨动开关基序之间的连接。我们观察到主题之间的连通性偏好取决于耦合排列,而不是取决于目标设置。此外,我们的结果表明在连接参数中存在阈值,用于特定耦合布置和目标设置的动力学结果。我们证明,简单的图案可以通过人工进化成功地结合起来,以形成更复杂的模块化调控网络。这些发现原则上支持上述关于生物系统进化机制的假设。

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