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Published on: June 6, 2025
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.
Abstract:
A major driver of multiple myeloma (MM) is thought to be aberrant signaling, yet no kinase inhibitors have proven successful in the clinic. Here, we employed an integrated, systems approach combining phosphoproteomic and transcriptome analysis to dissect cellular signaling in MM to inform precision medicine strategies. Unbiased phosphoproteomics initially revealed differential activation of kinases across MM cell lines and that sensitivity to mammalian target of rapamycin (mTOR) inhibition may be particularly dependent on mTOR kinase baseline activity. We further noted differential activity of immediate downstream effectors of Ras as a function of cell line genotype. We extended these observations to patient transcriptome data in the Multiple Myeloma Research Foundation CoMMpass study. A machine-learning-based classifier identified surprisingly divergent transcriptional outputs between NRAS- and KRAS-mutated tumors. Genetic dependency and gene expression analysis revealed mutated Ras as a selective vulnerability, but not other MAPK pathway genes. Transcriptional analysis further suggested that aberrant MAPK pathway activation is only present in a fraction of RAS-mutated vs wild-type RAS patients. These high-MAPK patients, enriched for NRAS Q61 mutations, have inferior outcomes, whereas RAS mutations overall carry no survival impact. We further developed an interactive software tool to relate pharmacologic and genetic kinase dependencies in myeloma. Collectively, these predictive models identify vulnerable signaling signatures and highlight surprising differences in functional signaling patterns between NRAS and KRAS mutants invisible to the genomic landscape. These results will lead to improved stratification of MM patients in precision medicine trials while also revealing unexplored modes of Ras biology in MM.
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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