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Updated: Dec 25, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Oncogenic Genomic Alterations, Clinical Phenotypes, and Outcomes in Metastatic Castration-Sensitive Prostate Cancer
Konrad H Stopsack1, Subhiksha Nandakumar2,3,4, Andreas G Wibmer5
1Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, New York.
Purpose:
The genomic underpinning of clinical phenotypes and outcomes in metastatic castration-sensitive prostate cancer is unclear.
Experimental Design:
In patients with metastatic castration-sensitive prostate cancer at a tertiary referral center, clinical-grade targeted tumor sequencing was performed to quantify tumor DNA copy number alterations and alterations in predefined oncogenic signaling pathways. Disease volume was classified as high volume (≥4 bone metastases or visceral metastases) versus low volume.
Results:
Among 424 patients (88% white), 213 (50%) had high-volume disease and 211 (50%) had low-volume disease, 275 (65%) had de novo metastatic disease, and 149 (35%) had metastatic recurrence of nonmetastatic disease. Rates of castration resistance [adjusted hazard ratio, 1.84; 95% confidence interval (CI), 1.40-2.41] and death (adjusted hazard ratio, 3.71; 95% CI, 2.28-6.02) were higher in high-volume disease. Tumors from high-volume disease had more copy number alterations. The NOTCH, cell cycle, and epigenetic modifier pathways were the highest-ranking pathways enriched in high-volume disease. De novo metastatic disease differed from metastatic recurrences in the prevalence of CDK12 alterations but had similar prognosis. Rates of castration resistance differed 1.5-fold to 5-fold according to alterations in AR, SPOP (inverse), and TP53, and the cell cycle, WNT (inverse), and MYC pathways, adjusting for disease volume and other genomic pathways. Overall survival rates differed 2-fold to 4-fold according to AR, SPOP (inverse), WNT (inverse), and cell-cycle alterations. PI3K pathway alterations were not associated with prognosis once adjusted for other factors.
Conclusions:
This study identified genomic features associated with prognosis in metastatic castration-sensitive disease that may aid in molecular classification and treatment selection.
Insights
Genomic alterations in metastatic castration-sensitive prostate cancer impact prognosis. High-volume disease shows more copy number alterations and enriched NOTCH, cell cycle, and epigenetic pathways, influencing castration resistance and survival.
Area of Science:
- Oncology
- Genomics
- Prostate Cancer Research
Background:
- Metastatic castration-sensitive prostate cancer (mCSPC) prognosis is influenced by genomic factors, yet these are not fully understood.
- Understanding the genomic landscape of mCSPC is crucial for improving patient outcomes and treatment strategies.
Purpose of the Study:
- To investigate the genomic underpinnings of clinical phenotypes and outcomes in metastatic castration-sensitive prostate cancer.
- To identify specific genomic alterations and pathways associated with disease volume, castration resistance, and overall survival.
Main Methods:
- Targeted tumor sequencing was performed on 424 patients with mCSPC to analyze DNA copy number alterations and oncogenic signaling pathways.
- Patients were classified by disease volume (high vs. low) and metastatic status (de novo vs. recurrent).
Main Results:
- High-volume disease exhibited more copy number alterations and enrichment in NOTCH, cell cycle, and epigenetic modifier pathways compared to low-volume disease.
- Alterations in AR, SPOP, TP53, and pathways including cell cycle and WNT were significantly associated with castration resistance and overall survival.
- De novo metastatic disease showed distinct CDK12 alteration prevalence compared to metastatic recurrence, with similar prognoses.
Conclusions:
- Genomic features, including copy number alterations and specific pathway activations, are associated with prognosis in mCSPC.
- These findings may facilitate molecular classification and guide personalized treatment selection for patients with mCSPC.
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