首页> 美国卫生研究院文献>Evolutionary Bioinformatics Online >A Unifying Mathematical Framework for Genetic Robustness Environmental Robustness Network Robustness and their Trade-offs on Phenotype Robustness in Biological Networks. Part III: Synthetic Gene Networks in Synthetic Biology
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A Unifying Mathematical Framework for Genetic Robustness Environmental Robustness Network Robustness and their Trade-offs on Phenotype Robustness in Biological Networks. Part III: Synthetic Gene Networks in Synthetic Biology

机译:遗传稳健性环境稳健性网络稳健性及其在生物网络中表型稳健性之间的权衡取舍的统一数学框架。第三部分:合成生物学中的合成基因网络

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摘要

Robust stabilization and environmental disturbance attenuation are ubiquitous systematic properties that are observed in biological systems at many different levels. The underlying principles for robust stabilization and environmental disturbance attenuation are universal to both complex biological systems and sophisticated engineering systems. In many biological networks, network robustness should be large enough to confer: intrinsic robustness for tolerating intrinsic parameter fluctuations; genetic robustness for buffering genetic variations; and environmental robustness for resisting environmental disturbances. Network robustness is needed so phenotype stability of biological network can be maintained, guaranteeing phenotype robustness. Synthetic biology is foreseen to have important applications in biotechnology and medicine; it is expected to contribute significantly to a better understanding of functioning of complex biological systems. This paper presents a unifying mathematical framework for investigating the principles of both robust stabilization and environmental disturbance attenuation for synthetic gene networks in synthetic biology. Further, from the unifying mathematical framework, we found that the phenotype robustness criterion for synthetic gene networks is the following: if intrinsic robustness + genetic robustness + environmental robustness ≦ network robustness, then the phenotype robustness can be maintained in spite of intrinsic parameter fluctuations, genetic variations, and environmental disturbances. Therefore, the trade-offs between intrinsic robustness, genetic robustness, environmental robustness, and network robustness in synthetic biology can also be investigated through corresponding phenotype robustness criteria from the systematic point of view. Finally, a robust synthetic design that involves network evolution algorithms with desired behavior under intrinsic parameter fluctuations, genetic variations, and environmental disturbances, is also proposed, together with a simulation example.
机译:健壮的稳定性和环境扰动衰减是在生物系统中许多不同级别上观察到的普遍存在的系统特性。鲁棒稳定和环境干扰衰减的基本原理对于复杂的生物系统和复杂的工程系统都是通用的。在许多生物网络中,网络鲁棒性应足够大以赋予:容忍内在参数波动的内在鲁棒性;缓冲遗传变异的遗传稳健性;以及抵抗环境干扰的环境稳健性。需要网络鲁棒性,以便可以维持生物网络的表型稳定性,从而保证表型的鲁棒性。预计合成生物学在生物技术和医学中具有重要的应用。有望为更好地理解复杂生物系统的功能做出重大贡献。本文提出了一个统一的数学框架,用于研究合成生物学中合成基因网络的鲁棒稳定和环境干扰衰减的原理。此外,从统一的数学框架中,我们发现合成基因网络的表型鲁棒性标准如下:如果固有鲁棒性+遗传鲁棒性+环境鲁棒性≤网络鲁棒性,那么尽管存在固有参数波动,表型鲁棒性仍可保持,遗传变异和环境干扰。因此,还可以通过系统的观点,通过相应的表型稳健性标准,研究合成生物学中内在的健壮性,遗传稳健性,环境稳健性和网络稳健性之间的权衡。最后,还提出了一个鲁棒的综合设计,其中包括具有内在参数波动,遗传变异和环境干扰下具有预期行为的网络演化算法,以及一个仿真示例。

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