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Updated: Feb 15, 2026

Generation of Prostate Cancer Cell Models of Resistance to the Anti-mitotic Agent Docetaxel
Published on: September 8, 2017
Integrative molecular network analysis identifies emergent enzalutamide resistance mechanisms in prostate cancer
Carly J King1, Josha Woodward2, Jacob Schwartzman2
1Department of Biomedical Engineering, OHSU Center for Spatial Systems Biomedicine, Oregon Health and Science University, Portland, OR 97239, USA.
Abstract:
Recent work demonstrates that castration-resistant prostate cancer (CRPC) tumors harbor countless genomic aberrations that control many hallmarks of cancer. While some specific mutations in CRPC may be actionable, many others are not. We hypothesized that genomic aberrations in cancer may operate in concert to promote drug resistance and tumor progression, and that organization of these genomic aberrations into therapeutically targetable pathways may improve our ability to treat CRPC. To identify the molecular underpinnings of enzalutamide-resistant CRPC, we performed transcriptional and copy number profiling studies using paired enzalutamide-sensitive and resistant LNCaP prostate cancer cell lines. Gene networks associated with enzalutamide resistance were revealed by performing an integrative genomic analysis with the PAthway Representation and Analysis by Direct Reference on Graphical Models (PARADIGM) tool. Amongst the pathways enriched in the enzalutamide-resistant cells were those associated with MEK, EGFR, RAS, and NFKB. Functional validation studies of 64 genes identified 10 candidate genes whose suppression led to greater effects on cell viability in enzalutamide-resistant cells as compared to sensitive parental cells. Examination of a patient cohort demonstrated that several of our functionally-validated gene hits are deregulated in metastatic CRPC tumor samples, suggesting that they may be clinically relevant therapeutic targets for patients with enzalutamide-resistant CRPC. Altogether, our approach demonstrates the potential of integrative genomic analyses to clarify determinants of drug resistance and rational co-targeting strategies to overcome resistance.
Insights
Genomic aberrations drive resistance to enzalutamide in castration-resistant prostate cancer (CRPC). Integrative analysis identified key pathways like MEK and EGFR, revealing potential therapeutic targets to overcome drug resistance in CRPC patients.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Oncology
Background:
- Castration-resistant prostate cancer (CRPC) exhibits numerous genomic alterations contributing to cancer hallmarks.
- While some CRPC mutations are targetable, many are not, necessitating a deeper understanding of their collective impact.
- Drug resistance, particularly to therapies like enzalutamide, poses a significant challenge in CRPC treatment.
Purpose of the Study:
- To identify the molecular mechanisms underlying enzalutamide resistance in CRPC.
- To investigate how genomic aberrations cooperate to drive drug resistance and tumor progression.
- To discover therapeutically targetable pathways that can overcome enzalutamide resistance in CRPC.
Main Methods:
- Transcriptional and copy number profiling of paired enzalutamide-sensitive and resistant LNCaP prostate cancer cell lines.
- Integrative genomic analysis using the PAthway Representation and Analysis by Direct Reference on Graphical Models (PARADIGM) tool.
- Functional validation of candidate genes and examination of a patient cohort with metastatic CRPC.
Main Results:
- Enriched pathways in enzalutamide-resistant cells included MEK, EGFR, RAS, and NFKB signaling.
- Functional studies identified 10 genes whose suppression significantly impacted cell viability in resistant cells.
- Several validated genes were found to be deregulated in metastatic CRPC patient samples.
Conclusions:
- Integrative genomic analysis can elucidate the determinants of drug resistance in CRPC.
- Targeting specific pathways, such as MEK and EGFR, may offer strategies to overcome enzalutamide resistance.
- The identified genes represent potential clinical targets for treating enzalutamide-resistant CRPC.
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