Quantifying Modularity in the Evolution of Biomolecular Systems
Open Access
- 1 March 2004
- journal article
- research article
- Published by Cold Spring Harbor Laboratory in Genome Research
- Vol. 14 (3), 391-397
- https://doi.org/10.1101/gr.1969504
Abstract
Functional modules are considered the primary building blocks of biomolecular systems. Here we study to what extent functional modules behave cohesively across genomes:That is, are functional modules also evolutionary modules? We probe this question by analyzing for a large collection of functional modules the phyletic patterns of their genes across 110 genomes. The majority of functional modules display limited evolutionary modularity. This result confirms certain comparative genome analyses, but is in contrast to implicit assumptions in the systems analysis of functional genomics data. We show that this apparent interspecies flexibility in the organization of functional modules depends more on functional differentiation within orthologous groups of genes, than on noise in the functional module definitions. When filtering out these sources of nonmodularity, even though very few functional modules behave perfectly modular in evolution, about half behave at least significantly more modular than a random set of genes. There are substantial differences in the evolutionary modularity between individual functional modules as well as between collections of functional modules, partly corresponding to conceptual differences in the functional module definition, which make comparisons between functional module collections biologically difficult to interpret. Analysis within one collection does not suffer from such differences, and we show that within the EcoCyc metabolic pathway database, biosynthetic pathways are evolutionarily more modular than catabolic pathways.Keywords
This publication has 41 references indexed in Scilit:
- The Phylogenetic Extent of Metabolic Enzymes and PathwaysGenome Research, 2003
- Transcriptional Regulatory Networks in Saccharomyces cerevisiaeScience, 2002
- Network Motifs: Simple Building Blocks of Complex NetworksScience, 2002
- Chromosomal gradient of histone acetylation established by Sas2p and Sir2p functions as a shield against gene silencingNature Genetics, 2002
- Comparative assessment of large-scale data sets of protein–protein interactionsNature, 2002
- Systematic identification of protein complexes in Saccharomyces cerevisiae by mass spectrometryNature, 2002
- Functional organization of the yeast proteome by systematic analysis of protein complexesNature, 2002
- Varieties of modules: Kinds, levels, origins, and behaviorsJournal of Experimental Zoology, 2001
- Transcription unit conservation in the three domains of life: a perspective from Escherichia coliTrends in Genetics, 2001
- Who's your neighbor? New computational approaches for functional genomicsNature Biotechnology, 2000