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Medusa structure of the gene regulatory network: Dominance of transcription factors in cancer subtype classification

  • Yuchun Guo
  • , Ying Feng
  • , Niraj S. Trivedi
  • , Sui Huang

Research output: Contribution to journalArticlepeer-review

19 Scopus citations

Abstract

Gene expression profiles consisting of ten thousands of transcripts are used for clustering of tissue, such as tumors, into subtypes, often without considering the underlying reason that the distinct patterns of expression arise because of constraints in the realization of gene expression profiles imposed by the gene regulatory network. The topology of this network has been suggested to consist of a regulatory core of genes represented most prominently by transcription factors (TFs) and microRNAs, that influence the expression of other genes, and of a periphery of 'enslaved' effector genes that are regulated but not regulating. This 'medusa' architecture implies that the core genes are much stronger determinants of the realized gene expression profiles. To test this hypothesis, we examined the clustering of gene expression profiles into known tumor types to quantitatively demonstrate that TFs, and even more pronounced, microRNAs, are much stronger discriminators of tumor type specific gene expression patterns than a same number of randomly selected or metabolic genes. These findings lend support to the hypothesis of a medusa architecture and of the canalizing nature of regulation by microRNAs. They also reveal the degree of freedom for the expression of peripheralgenes that are less stringently associated with a tissue type specific global gene expression profile.

Original languageEnglish
Pages (from-to)628-636
Number of pages9
JournalExperimental Biology and Medicine
Volume236
Issue number5
DOIs
StatePublished - May 2011

Keywords

  • Core network
  • Gene expression pattern
  • Gene regulatory network
  • Medusa network
  • Transcription

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