Literature DB >> 15042341

Molecular evolution in large genetic networks: does connectivity equal constraint?

Matthew W Hahn1, Gavin C Conant, Andreas Wagner.   

Abstract

Genetic networks show a broad-tailed distribution of the number of interaction partners per protein, which is consistent with a power-law. It has been proposed that such broad-tailed distributions are observed because they confer robustness against mutations to the network. We evaluate this hypothesis for two genetic networks, that of the E. coli core intermediary metabolism and that of the yeast protein-interaction network. Specifically, we test the hypothesis through one of its key predictions: highly connected proteins should be more important to the cell and, thus, subject to more severe selective and evolutionary constraints. We find, however, that no correlation between highly connected proteins and evolutionary rate exists in the E. coli metabolic network and that there is only a weak correlation in the yeast protein-interaction network. Furthermore, we show that the observed correlation is function-specific within the protein-interaction network: only genes involved in the cell cycle and transcription show significant correlations. Our work sheds light on conflicting results by previous researchers by comparing data from multiple types of protein-interaction datasets and by using a closely related species as a reference taxon. The finding that highly connected proteins can tolerate just as many amino acid substitutions as other proteins leads us to conclude that power-laws in cellular networks do not reflect selection for mutational robustness.

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Year:  2004        PMID: 15042341     DOI: 10.1007/s00239-003-2544-0

Source DB:  PubMed          Journal:  J Mol Evol        ISSN: 0022-2844            Impact factor:   2.395


  44 in total

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3.  The complete genome sequence of Escherichia coli K-12.

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4.  A codon-based model of nucleotide substitution for protein-coding DNA sequences.

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6.  Do essential genes evolve slowly?

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9.  Functional effects of PGI allozymes in Escherichia coli.

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10.  A simple dependence between protein evolution rate and the number of protein-protein interactions.

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  54 in total

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2.  Molecular evolution, mutation size and gene pleiotropy: a geometric reexamination.

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Review 4.  Genomes, phylogeny, and evolutionary systems biology.

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Review 5.  The gene balance hypothesis: from classical genetics to modern genomics.

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Review 6.  Genetic constraints on protein evolution.

Authors:  Manel Camps; Asael Herman; Ern Loh; Lawrence A Loeb
Journal:  Crit Rev Biochem Mol Biol       Date:  2007 Sep-Oct       Impact factor: 8.250

7.  Population genetics of translational robustness.

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8.  Variation in constraint versus positive selection as an explanation for evolutionary rate variation among anthocyanin genes.

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9.  Global versus local centrality in evolution of yeast protein network.

Authors:  Alexander E Vinogradov
Journal:  J Mol Evol       Date:  2009-01-14       Impact factor: 2.395

10.  Evolutionary constraint and adaptation in the metabolic network of Drosophila.

Authors:  Anthony J Greenberg; Sarah R Stockwell; Andrew G Clark
Journal:  Mol Biol Evol       Date:  2008-09-17       Impact factor: 16.240

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