4.6 Article

Functional network motifs defined through integration of protein-protein and genetic interactions

期刊

PEERJ
卷 10, 期 -, 页码 -

出版社

PEERJ INC
DOI: 10.7717/peerj.13016

关键词

Network motif; Feedback regulation; Protein interaction; Genetic interaction

资金

  1. Natural Sciences and Engineering Research Council of Canada [06504-2016]
  2. Canada Research Chair in Computational Systems Biology

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This article defines functional network motifs (FNMs) through the integration of genetic interaction data and demonstrates their power in capturing regulatory interactions. It highlights the importance of FNMs for the systematic identification of feedback regulation in biological networks.
Cells are enticingly complex systems. The identification of feedback regulation is critically important for understanding this complexity. Network motifs defined as small graphlets that occur more frequently than expected by chance have revolutionized our understanding of feedback circuits in cellular networks. However, with their definition solely based on statistical over-representation, network motifs often lack biological context, which limits their usefulness. Here, we define functional network motifs (FNMs) through the systematic integration of genetic interaction data that directly inform on functional relationships between genes and encoded proteins. Occurring two orders of magnitude less frequently than conventional network motifs, we found FNMs significantly enriched in genes known to be functionally related. Moreover, our comprehensive analyses of FNMs in yeast showed that they are powerful at capturing both known and putative novel regulatory interactions, thus suggesting a promising strategy towards the systematic identification of feedback regulation in biological networks. Many FNMs appeared as excellent candidates for the prioritization of followup biochemical characterization, which is a recurring bottleneck in the targeting of complex diseases. More generally, our work highlights a fruitful avenue for integrating and harnessing genomic network data.

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