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Bioattractors: dynamical systems theory and the evolution of regulatory processes

机译:生物吸引物:动力学系统理论与调控过程的演变

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摘要

In this paper, we illustrate how dynamical systems theory can provide a unifying conceptual framework for evolution of biological regulatory systems. Our argument is that the genotype–phenotype map can be characterized by the phase portrait of the underlying regulatory process. The features of this portrait – such as attractors with associated basins and their bifurcations – define the regulatory and evolutionary potential of a system. We show how the geometric analysis of phase space connects Waddington's epigenetic landscape to recent computational approaches for the study of robustness and evolvability in network evolution. We discuss how the geometry of phase space determines the probability of possible phenotypic transitions. Finally, we demonstrate how the active, self-organizing role of the environment in phenotypic evolution can be understood in terms of dynamical systems concepts. This approach yields mechanistic explanations that go beyond insights based on the simulation of evolving regulatory networks alone. Its predictions can now be tested by studying specific, experimentally tractable regulatory systems using the tools of modern systems biology. A systematic exploration of such systems will enable us to understand better the nature and origin of the phenotypic variability, which provides the substrate for evolution by natural selection.
机译:在本文中,我们说明了动力学系统理论如何为生物学调控系统的演化提供统一的概念框架。我们的论点是,基因型-表型图可以通过基础调控过程的相图来表征。该肖像的特征(例如带有相关盆地的吸引器及其分支)定义了系统的调节和进化潜力。我们将展示相空间的几何分析如何将Waddington的表观遗传景观与最新的计算方法联系起来,以研究网络演化的鲁棒性和可进化性。我们讨论相空间的几何形状如何确定可能的表型转变的可能性。最后,我们展示了如何根据动力学系统概念来理解环境在表型进化中的积极,自组织的作用。这种方法产生的机械解释超出了仅基于不断发展的监管网络的模拟得出的见解。现在,可以通过使用现代系统生物学的工具研究特定的,实验上易处理的调节系统来检验其预测。对此类系统的系统探索将使我们能够更好地理解表型变异的性质和起源,这为通过自然选择进化提供了基础。

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