Illuminating the Dark Cancer Phosphoproteome Through a Machine-Learned Co-Regulation Map of 26,280 Phosphosites

Insights

Researchers developed CoPheeMap and CoPheeKSA, using machine learning on phosphoproteomic data to map protein phosphorylation networks. This reveals novel kinase-substrate associations, aiding cancer signaling pathway discovery and identifying potential therapeutic targets.

Area of Science:

  • * Computational biology
  • * Molecular oncology
  • * Systems biology

Background:

  • * Phosphoproteomics data analysis is limited by poor understanding of phosphosite regulation and function.
  • * Extracting meaningful biological insights from large-scale phosphoproteomics datasets remains a challenge.

Approach:

  • We integrated machine learning with phosphoproteomic data from 1,195 tumor specimens across 11 cancer types.
  • Developed CoPheeMap, a network mapping 26,280 co-regulated phosphosites.
  • Created CoPheeKSA, a machine learning model utilizing CoPheeMap features to predict kinase-substrate associations.

Key Points:

  • CoPheeKSA accurately predicts 24,015 kinase-substrate associations involving 9,399 phosphosites and 104 kinases.
  • Identified associations for numerous unannotated phosphosites and under-studied kinases.
  • Predictions were validated using experimental kinase-substrate specificity data.

Conclusions:

  • * CoPheeMap and CoPheeKSA effectively illuminate phosphosites of interest and dysregulated cancer signaling.
  • * The tools identify under-studied kinases as potential therapeutic targets in human cancers.
  • * This approach enhances the biological interpretation of phosphoproteomics data.

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