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Special Feature: Complex Systems: From Chemistry to Systems Biology Special Feature: Phenotypes and tolerances in the design space of biochemical systems

机译:专题:复杂系统:从化学到系统生物学专题:生化系统设计空间中的表型和公差

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摘要

One of the major unsolved problems of modern biology is deep understanding of the complex relationship between the information encoded in the genome of an organism and the phenotypic properties manifested by that organism. Fundamental advances must be made before we can begin to approach the goal of predicting the phenotypic consequences of a given mutation or an organism's response to a novel environmental challenge. Although this problem is often portrayed as if the task were to find a more or less direct link between genotypic and phenotypic levels, on closer examination the relationship is far more layered and complex. Although there are some intuitive notions of what is meant by phenotype at the level of the organism, it is far from clear what this term means at the biochemical level. We have described design principles that are readily revealed by representation of molecular systems in an appropriate design space. Here, we first describe a generic approach to the construction of such a design space in which qualitatively distinct phenotypes can be identified and counted. Second, we show how the boundaries between these phenotypic regions provide a method of characterizing a system's tolerance to large changes in the values of its parameters. Third, we illustrate the approach for one of the most basic modules of biochemical networks and describe an associated design principle. Finally, we discuss the scaling of this approach to large systems.
机译:现代生物学的主要未解决问题之一是深入了解生物体基因组中编码的信息与该生物体表现出的表型特性之间的复杂关系。在我们开始着手预测给定突变或生物体对新的环境挑战的反应的表型后果的目标之前,必须取得根本性的进步。尽管通常将这个问题描述为任务是要在基因型和表型水平之间找到一个或多或少的直接联系,但仔细研究后,这种关系就更加分层和复杂了。尽管在生物体水平上有一些表型含义的直觉概念,但在生化水平上该术语的含义还很不清楚。我们已经描述了在适当的设计空间中通过分子系统表示容易揭示的设计原理。在这里,我们首先描述构建这种设计空间的通用方法,在该方法中可以识别和计数定性不同的表型。其次,我们展示了这些表型区域之间的边界如何提供一种表征系统对参数值的大变化的容忍度的方法。第三,我们说明了生化网络最基本模块之一的方法,并描述了相关的设计原理。最后,我们讨论了这种方法在大型系统上的扩展。

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