Integrative Modeling Identifies Key Determinants of Inhibitor Sensitivity in Breast Cancer Cell Lines

Katarzyna Jastrzebski1, Bram Thijssen1,2, Roelof J C Kluin3

  • 1Division of Molecular Carcinogenesis, The Netherlands Cancer Institute, Amsterdam, the Netherlands.

Cancer Research
|May 31, 2018
PubMed

Insights

This study integrates multi-omics data and computational modeling to understand breast cancer cell line drug sensitivity. It reveals 4E-BP1 protein levels, not just phosphorylation, impact mTOR inhibitor response.

Area of Science:

  • Oncology
  • Computational Biology
  • Genomics

Background:

  • Cancer cell line drug sensitivity varies due to diverse oncogenic drivers and resistance mechanisms.
  • Understanding the complex interplay of these mechanisms in drug response remains a challenge.

Purpose of the Study:

  • To investigate the variability in breast cancer cell line sensitivity to kinase inhibitors.
  • To develop an integrative computational model to predict drug response based on molecular profiles.

Main Methods:

  • Profiling 30 breast cancer cell lines for mutations, copy number aberrations, mRNA, protein, and phosphorylation.
  • Applying a Bayesian computational model to integrate multi-omics data and drug response.
  • Experimental validation of model-derived hypotheses.

Main Results:

  • The integrative model explained a significant portion of drug response variability.
  • Identified 4E-BP1 protein expression, in addition to phosphorylation, as a key determinant of mTOR inhibitor sensitivity.
  • Demonstrated that increased 4E-BP1 expression enhances sensitivity to mTOR inhibitors.

Conclusions:

  • Combining experimental profiling with integrative modeling systematically enhances understanding of anticancer drug response variability.
  • This approach can help predict patient response to kinase inhibitors by elucidating resistance mechanisms.

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