A functional analysis of omic network embedding spaces reveals key altered functions in cancer

Sergio Doria-Belenguer1, Alexandros Xenos1, Gaia Ceddia1

  • 1Department of Life Science, Barcelona Supercomputing Center (BSC), Barcelona 08034, Spain.

Abstract

Insights

This study introduces a function-centric approach to cancer research, using the Functional Mapping Matrix (FMM) to identify novel cancer-related genes and functions missed by traditional gene-centric methods.

Area of Science:

  • Bioinformatics
  • Computational Biology
  • Cancer Genomics

Background:

  • Omics technologies generate massive cancer datasets, often analyzed using network embedding algorithms.
  • Current gene-centric embedding approaches provide incomplete insights by overlooking functional implications of genomic alterations.

Purpose of the Study:

  • To introduce a novel function-centric approach to complement existing omics data analysis in cancer research.
  • To develop and apply the Functional Mapping Matrix (FMM) for analyzing molecular interaction network embeddings.

Main Methods:

  • Utilized Non-negative Matrix Tri-Factorization to generate tissue- and species-specific embedding spaces.
  • Applied the Functional Mapping Matrix (FMM) to determine optimal embedding dimensionality and analyze functional organization.
  • Compared FMMs between human cancers and control tissues to identify altered functional positions.

Main Results:

  • Cancer alters the embedding space positions of cancer-related functions, while non-cancer-related functions remain stable.
  • Successfully predicted novel cancer-related functions and genes by exploiting these spatial shifts.
  • Validated predictions through literature curation and patient survival data analysis.

Conclusions:

  • The function-centric approach and FMM offer a powerful new perspective for cancer research.
  • This method enhances the discovery of cancer-related genes and functions beyond traditional gene-centric analyses.
  • The study provides accessible code and data for reproducible research.

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