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Architecture-Dependent Robustness and Bistability in a Class of Genetic Circuits

机译:一类遗传电路中与体系结构相关的鲁棒性和双稳态

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摘要

Understanding the relationship between genotype and phenotype is a challenge in systems biology. An interesting yet related issue is why a particular circuit topology is present in a cell when the same function can supposedly be obtained from an alternative architecture. Here we analyzed two topologically equivalent genetic circuits of coupled positive and negative feedback loops, named NAT and ALT circuits, respectively. The computational search for the oscillation volume of the entire biologically reasonable parameter region through large-scale random samplings shows that the NAT circuit exhibits a distinctly larger fraction of the oscillatory region than the ALT circuit. Such a global robustness difference between two circuits is supplemented by analyzing local robustness, including robustness to parameter perturbations and to molecular noise. In addition, detailed dynamical analysis shows that the molecular noise of both circuits can induce transient switching of the different mechanism between a stable steady state and a stable limit cycle. Our investigation on robustness and dynamics through examples provides insights into the relationship between network architecture and its function.
机译:了解基因型和表型之间的关系是系统生物学中的一个挑战。一个有趣但相关的问题是,为什么可以从替代架构中获得相同的功能,但为什么单元中仍存在特定的电路拓扑。在这里,我们分析了耦合的正反馈回路和负反馈回路的两个拓扑等效遗传电路,分别称为NAT和ALT电路。通过大规模随机采样对整个生物学上合理的参数区域的振荡量进行的计算搜索显示,与ALT电路相比,NAT电路的振荡区域比例明显更大。通过分析局部鲁棒性(包括对参数扰动和分子噪声的鲁棒性),可以补充两个电路之间的这种全局鲁棒性差异。此外,详细的动力学分析表明,两个电路的分子噪声都可以引起不同机制在稳定稳态和稳定极限循环之间的瞬态切换。我们通过示例对鲁棒性和动态性的研究提供了对网络体系结构及其功能之间关系的见解。

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