Patient-specific signaling signatures predict optimal therapeutic combinations for triple negative breast cancer

Heba Alkhatib1, Jason Conage-Pough2,3, Sangita Roy Chowdhury1

  • 1The Institute of Biomedical and Oral Research, The Hebrew University of Jerusalem, 9103401, Jerusalem, Israel.

Molecular Cancer
|January 16, 2024
PubMed

Insights

Personalized combination therapies for triple negative breast cancer (TNBC) were developed using phosphoproteomic analysis and patient-specific signaling signatures (PaSSS). This novel strategy accurately predicts effective treatments by identifying molecular imbalances, improving targeted therapy outcomes.

Area of Science:

  • Oncology
  • Systems Biology
  • Bioinformatics

Background:

  • Triple negative breast cancer (TNBC) is a complex and heterogeneous cancer lacking targeted therapy options.
  • Current targeted therapies for TNBC have limited success, highlighting the need for novel treatment strategies.
  • Developing individualized combination therapies is crucial for improving patient outcomes in TNBC.

Discussion:

  • Phosphoproteomic analysis and patient-specific signaling signature (PaSSS) analysis were integrated to characterize TNBC signaling networks.
  • An information-theoretic, thermodynamic-based approach was used to identify unbalanced signaling processes in patient-derived tumors (PDX).
  • The study identified an average of two distinct unbalanced signaling processes per tumor, with EGFR being a key target in half of the cases.

Key Insights:

  • Personalized combination therapies based on PaSSS predictions demonstrated superior accuracy compared to monotherapies or other treatment strategies.
  • Anti-EGFR monotherapies were predicted to be ineffective, underscoring the need for combination approaches.
  • The PaSSS method enables the design of tailored combination treatments, including alternative therapies when EGFR is not a primary target.

Outlook:

  • This approach offers a new strategy for designing personalized therapies for TNBC by identifying molecular imbalances.
  • The pY proteomics and PaSSS analysis method can be extended to other cancer types to enhance biomarker-based treatment responses.
  • Further research can refine this strategy for broader clinical application in precision oncology.

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