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Updated: Mar 25, 2026

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
IκBα mediates prostate cancer cell death induced by combinatorial targeting of the androgen receptor
Sarah L Carter, Sarah Louise Carter1, Margaret M Centenera
1Dame Roma Mitchell Cancer Research Laboratories, Adelaide Prostate Cancer Research Centre and Freemason's Foundation Centre for Men's Health, School of Medicine, University of Adelaide and Hanson Institute, Adelaide, SA, 5005, Australia. sarahlou.carter@gmail.com.
Background:
Combining different clinical agents to target multiple pathways in prostate cancer cells, including androgen receptor (AR) signaling, is potentially an effective strategy to improve outcomes for men with metastatic disease. We have previously demonstrated that sub-effective concentrations of an AR antagonist, bicalutamide, and the histone deacetylase inhibitor, vorinostat, act synergistically when combined to cause death of AR-dependent prostate cancer cells.
Methods:
In this study, expression profiling of human prostate cancer cells treated with bicalutamide or vorinostat, alone or in combination, was employed to determine the molecular mechanisms underlying this synergistic action. Cell viability assays and quantitative real time PCR were used to validate identified candidate genes.
Results:
A substantial proportion of the genes modulated by the combination of bicalutamide and vorinostat were androgen regulated. Independent pathway analysis identified further pathways and genes, most notably NFKBIA (encoding IκBα, an inhibitor of NF-κB and p53 signaling), as targets of this combinatorial treatment. Depletion of IκBα by siRNA knockdown enhanced apoptosis of prostate cancer cells, while ectopic overexpression of IκBα markedly suppressed cell death induced by the combination of bicalutamide and vorinostat.
Conclusion:
These findings implicate IκBα as a key mediator of the apoptotic action of this combinatorial AR targeting strategy and a promising new therapeutic target for prostate cancer.
Insights
Combining bicalutamide and vorinostat synergistically kills prostate cancer cells by targeting IκBα. This protein is a key mediator of apoptosis and a potential therapeutic target for advanced prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Metastatic prostate cancer treatment benefits from targeting multiple pathways, including androgen receptor (AR) signaling.
- Previous studies showed synergy between bicalutamide (AR antagonist) and vorinostat (HDAC inhibitor) in killing AR-dependent prostate cancer cells.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the synergistic cell death induced by combining bicalutamide and vorinostat.
- To identify key molecular targets and pathways modulated by this combination therapy.
Main Methods:
- Gene expression profiling of prostate cancer cells treated with bicalutamide and/or vorinostat.
- Cell viability assays and quantitative real-time PCR for validating candidate genes.
- siRNA knockdown and overexpression studies to assess the role of identified genes.
Main Results:
- The combination treatment significantly modulated androgen-regulated genes.
- NFKBIA, encoding IκBα (an inhibitor of NF-κB and p53), was identified as a key target.
- IκBα depletion enhanced apoptosis, while its overexpression suppressed cell death.
Conclusions:
- IκBα is a critical mediator of apoptosis in prostate cancer cells treated with this combination therapy.
- IκBα represents a promising therapeutic target for novel prostate cancer treatments.
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