Common biochemical properties of metabolic genes recurrently dysregulated in tumors

Krishnadev Oruganty1,2, Scott Edward Campit3, Sainath Mamde1

  • 11Department of Biomedical Engineering, University of Michigan, Ann Arbor, MI 48105 USA.

Cancer & Metabolism
|May 16, 2020
PubMed
Abstract

Insights

Metabolic alterations drive cancer, but their causes are unknown. MetOncoFit, a new computational model, predicts cancer metabolic gene expression and survival by analyzing enzyme activity and network structure.

Area of Science:

  • Biochemistry
  • Computational Biology
  • Cancer Research

Background:

  • Tumorigenesis involves significant metabolic changes.
  • The specific biochemical factors causing metabolic gene dysregulation in cancer remain poorly understood.

Purpose of the Study:

  • To develop and validate MetOncoFit, a computational model integrating metabolic features to predict cancer progression.
  • To identify key metabolic drivers of cancer gene expression and patient survival.

Main Methods:

  • Developed MetOncoFit, a model integrating 142 metabolic features (enzyme activity, pathway, network topology, flux).
  • Utilized genome-scale metabolic modeling and machine learning for prediction.
  • Performed meta-analysis across 9 cancer types using TCGA, Prognoscan, and COSMIC databases.

Main Results:

  • MetOncoFit accurately predicted enzyme differential expression and its impact on patient survival.
  • Highly active enzymes were often upregulated in tumors and linked to poorer outcomes.
  • Identified specific metabolites as critical hubs of metabolic dysregulation.

Conclusions:

  • MetOncoFit effectively integrates diverse datasets to elucidate metabolic gene dysregulation in cancer.
  • The model demonstrated superior accuracy in predicting differential expression, copy number variation, and survival compared to traditional methods.
  • Highlighted the roles of enzyme activity and metabolic network architecture in tumorigenesis.

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