Integrated phosphoproteomics and transcriptional classifiers reveal hidden RAS signaling dynamics in multiple myeloma

Yu-Hsiu T Lin1, Gregory P Way2, Benjamin G Barwick3

  • 1Department of Laboratory Medicine, University of California, San Francisco, San Francisco, CA.

Blood Advances
|November 8, 2019
PubMed

Insights

Aberrant signaling drives multiple myeloma (MM), but kinase inhibitors fail. This study reveals Ras mutations as a vulnerability in MM, identifying specific patient subgroups for precision medicine strategies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Systems Biology

Background:

  • Aberrant signaling is a key driver of multiple myeloma (MM), but clinical success with kinase inhibitors remains elusive.
  • Understanding complex cellular signaling networks is crucial for developing effective precision medicine strategies in MM.

Purpose of the Study:

  • To dissect cellular signaling in MM using an integrated systems approach.
  • To identify novel therapeutic vulnerabilities and inform precision medicine strategies for MM patients.
  • To investigate the functional differences between NRAS and KRAS mutations in MM.

Main Methods:

  • Integrated phosphoproteomic and transcriptome analysis of MM cell lines.
  • Machine-learning-based classification of patient transcriptome data (CoMMpass study).
  • Genetic dependency and gene expression analysis.
  • Development of an interactive software tool for kinase dependency analysis.

Main Results:

  • Differential kinase activation and mTOR pathway sensitivity identified in MM cell lines.
  • NRAS- and KRAS-mutated MM tumors exhibit distinct transcriptional outputs.
  • Mutated Ras identified as a selective vulnerability, independent of other MAPK pathway genes.
  • High-MAPK pathway activation in a subset of RAS-mutated MM patients, particularly NRAS Q61 mutants, correlates with inferior outcomes.
  • RAS mutations alone do not impact survival in MM.

Conclusions:

  • Predictive models highlight vulnerable signaling signatures and functional differences between NRAS and KRAS mutants in MM.
  • Findings suggest improved patient stratification for precision medicine trials in MM.
  • The study reveals previously unexplored aspects of Ras biology in MM, paving the way for novel therapeutic targets.

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