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Metanetworks of artificially evolved regulatory networks

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IOP Publishing

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Araştırma Projeleri

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We study metanetworks arising in genotype and phenotype spaces, in the context of a model population of Boolean graphs evolved under selection for short dynamical attractors. We define the adjacency matrix of a graph as its genotype, which gets mutated in the course of evolution, while its phenotype is its set of dynamical attractors. Metanetworks in the genotype and phenotype spaces are formed, respectively, by genetic proximity and by phenotypic similarity, the latter weighted by the sizes of the basins of attraction of the shared attractors. We find that populations of evolved networks form giant clusters in genotype space, have Poissonian degree distributions but exhibit hierarchically organized $κ$-core decompositions. Nevertheless, at large scales, they form tree-like expander graphs. Random populations of Boolean graphs are typically so far removed from each other genetically that they cannot form a metanetwork. In phenotype space, the metanetworks of evolved populations are super robust both under the elimination of weak connections and random removal of nodes.
15 pages, 27 figures

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Journal of Statistical Mechanics: Theory and Experiment

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OPEN

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Physics - Physics and Society, Biochemistry, molecular biology, Systems biology, networks, Populations and Evolution (q-bio.PE), FOS: Physical sciences, Physics and Society (physics.soc-ph), Problems related to evolution, Time-dependent percolation in statistical mechanics, Biological Physics (physics.bio-ph), FOS: Biological sciences, Physics - Biological Physics, Quantitative Biology - Populations and Evolution

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