Reconstructing protein complexes: From proteomics to systems biology
- 25 August 2006
- journal article
- review article
- Published by Wiley in Proteomics
- Vol. 6 (17) , 4724-4731
- https://doi.org/10.1002/pmic.200500895
Abstract
Modern high throughput technologies in biological science often create lists of interesting molecules. The challenge is to reconstruct a descriptive model from these lists that reflects the underlying biological processes as accurately as possible. Once we have such a model or network, what can we learn from it? Specifically, given that we are interested in some biological process associated with the model, what new properties can we predict and subsequently test? Here, we describe, at an introductory level, a range of bioinformatics techniques that can be systematically applied to proteomic datasets. When combined, these methods give us a global overview of the network and the properties of the proteins and their interactions. These properties can then be used to predict functional pathways within the network and to examine substructure. To illustrate the application of these methods, we draw upon our own work concerning a complex of 186 proteins found in neuronal synapses in mammals. The techniques discussed are generally applicable and could be used to examine lists of proteins involved with the biological response to electric or magnetic fields.Keywords
This publication has 24 references indexed in Scilit:
- The proteomes of neurotransmitter receptor complexes form modular networks with distributed functionality underlying plasticity and behaviourMolecular Systems Biology, 2006
- Molecular characterization and comparison of the components and multiprotein complexes in the postsynaptic proteomeJournal of Neurochemistry, 2005
- Towards a proteome-scale map of the human protein–protein interaction networkNature, 2005
- Interactome modelingFEBS Letters, 2005
- GPSDB: a new database for synonyms expansion of gene and protein namesBioinformatics, 2004
- Cytoscape: A Software Environment for Integrated Models of Biomolecular Interaction NetworksGenome Research, 2003
- 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
- Automatic clustering of orthologs and in-paralogs from pairwise species comparisonsJournal of Molecular Biology, 2001
- Isolation of 2000‐kDa complexes of N‐methyl‐d‐aspartate receptor and postsynaptic density 95 from mouse brainJournal of Neurochemistry, 2001