Title
Core and periphery structures in protein interaction networks.
Abstract
Characterizing the structural properties of protein interaction networks will help illuminate the organizational and functional relationships among elements in biological systems.In this paper, we present a systematic exploration of the core/periphery structures in protein interaction networks (PINs). First, the concepts of cores and peripheries in PINs are defined. Then, computational methods are proposed to identify two types of cores, k-plex cores and star cores, from PINs. Application of these methods to a yeast protein interaction network has identified 110 k-plex cores and 109 star cores. We find that the k-plex cores consist of either "party" proteins, "date" proteins, or both. We also reveal that there are two classes of 1-peripheral proteins: "party" peripheries, which are more likely to be part of protein complex, and "connector" peripheries, which are more likely connected to different proteins or protein complexes. Our results also show that, besides connectivity, other variations in structural properties are related to the variation in biological properties. Furthermore, the negative correlation between evolutionary rate and connectivity are shown toysis. Moreover, the core/periphery structures help to reveal the existence of multiple levels of protein expression dynamics.Our results show that both the structure and connectivity can be used to characterize topological properties in protein interaction networks, illuminating the functional organization of cellular systems.
Year
DOI
Venue
2009
10.1186/1471-2105-10-S4-S8
BMC Bioinformatics
Keywords
Field
DocType
computational biology,algorithms,protein expression,microarrays,bioinformatics,biological systems,proteins,protein complex
Protein Interaction Networks,Biology,Bioinformatics,Computational biology
Journal
Volume
Issue
ISSN
10 Suppl 4
S-4
1471-2105
Citations 
PageRank 
References 
34
0.79
13
Authors
4
Name
Order
Citations
PageRank
Feng Luo128426.03
Bo Li257845.93
Xiu-Feng Wan315612.42
Richard H. Scheuermann425823.91