Phosphoproteomic Profiling Reveals ALK and MET as Novel Actionable Targets across Synovial Sarcoma Subtypes

Emmy D G Fleuren1,2, Myrella Vlenterie3, Winette T A van der Graaf4,5

  • 1Division of Clinical Studies, The Institute of Cancer Research, London, United Kingdom. Emmy.Fleuren@icr.ac.uk roger.daly@monash.edu.

Cancer Research
|June 22, 2017
PubMed

Insights

This study identifies ALK and MET as promising therapeutic targets for synovial sarcoma (SS) by analyzing cell line phosphoproteomics. ALK was a novel driver in some SS cell lines, and both ALK and MET showed potential for targeted therapies in SS patients.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Sarcomas, including synovial sarcoma (SS), have poor survival rates despite multimodal treatments.
  • Current targeted therapies show limited success, necessitating unbiased analysis of oncogenic signaling networks.
  • Identifying novel therapeutic targets and personalized strategies is crucial for improving sarcoma patient outcomes.

Purpose of the Study:

  • To identify novel tyrosine phosphorylation patterns and potential driver kinases in a large, heterogeneous set of sarcoma cell lines.
  • To investigate ALK, PDGFRα, and MET as potential therapeutic targets in synovial sarcoma.
  • To evaluate the efficacy of targeted inhibitors against identified oncogenic drivers in SS.

Main Methods:

  • Mass spectrometry-based phosphoproteomic profiling of sarcoma cell lines.
  • Functional validation of ALK dependency using selective inhibitors in vitro and in vivo.
  • Immunohistochemical analysis of ALK, MET, and PDGFRα expression in SS patient specimens.

Main Results:

  • ALK was identified as a novel driver in an SS cell line (Aska-SS) due to a variant (ALKΔ2-17) with functional dependency confirmed by inhibitors.
  • ALK immunopositivity was found in 14% of SS patient specimens, with one showing an ALK rearrangement.
  • High PDGFRα phosphorylation and enhanced MET activation were observed in SS cell lines, with MET or PDGFRα expression detected in 58% and 84% of patients, respectively.

Conclusions:

  • ALK and MET are promising therapeutic targets for synovial sarcoma.
  • Targeted inhibition of ALK and MET, potentially in combination, could offer new treatment strategies for SS patients.
  • Phosphoproteomic profiling is a valuable approach for uncovering novel oncogenic drivers and therapeutic targets in heterogeneous cancers like sarcoma.

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