BAD phosphorylation determines ovarian cancer chemosensitivity and patient survival

Douglas C Marchion1, Hope M Cottrill, Yin Xiong

  • 1Department of Women's Oncology, H. Lee Moffitt Cancer Center and Research Institute, Tampa, Florida 33647, USA.

Abstract

Insights

Ovarian cancer (OVCA) drug resistance is linked to the BAD apoptosis pathway. Targeting BAD phosphorylation may improve chemotherapy response and patient survival in OVCA.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genomics

Background:

  • Ovarian cancer (OVCA) frequently develops resistance to chemotherapy, significantly impacting patient survival.
  • Understanding the molecular mechanisms driving chemoresistance is crucial for developing effective treatments.

Purpose of the Study:

  • To investigate genome-wide expression changes associated with OVCA chemoresistance evolution.
  • To characterize the BCL2 antagonist of cell death (BAD) apoptosis pathway's role in OVCA chemosensitivity and patient survival.

Main Methods:

  • Serial cisplatin treatment of OVCA cell lines with parallel genome-wide expression profiling.
  • Analysis of BAD-pathway gene expression and BAD protein phosphorylation in patient samples and cell lines.
  • Correlation of BAD pathway markers with cisplatin resistance, clinical outcomes, and therapeutic targeting.

Main Results:

  • Induced OVCA cisplatin resistance correlated with BAD-pathway expression (P < 0.001).
  • BAD protein phosphorylation was linked to platinum resistance (n=147, P<0.0001) and overall survival (n=134, P=0.0007).
  • A 47-gene BAD-pathway score predicted survival in advanced-stage OVCA patients.

Conclusions:

  • The BAD apoptosis pathway significantly influences OVCA chemosensitivity and survival, mediated by BAD phosphorylation.
  • The BAD pathway serves as a potential biomarker for therapeutic response and patient survival in OVCA.
  • Targeting the BAD pathway presents a promising therapeutic strategy for overcoming OVCA chemoresistance.

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