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Updated: Oct 19, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Metastatic Castration-Resistant Prostate Cancer Remains Dependent on Oncogenic Drivers Found in Primary Tumors
David J Einstein1, Seiji Arai1,2, Carla Calagua1
1Division of Medical Oncology and Cancer Center, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, MA.
Abstract:
Metastatic prostate cancer is initially sensitive to androgen receptor inhibition, but eventually becomes castration-resistant prostate cancer (mCRPC). Early use of more intensive therapies targeting androgen receptor and other oncogenic drivers in treatment-naïve primary prostate cancer (PC) may be more effective than that in advanced mCRPC. However, analysis of primary tumors may not reveal targetable metastatic drivers that are subclonal in the primary tumor or acquired at metastatic sites.
Methods:
PC samples spanning one patient's clinical course: diagnostic biopsies, pre- or post-enzalutamide metastatic biopsies, and rapid autopsy samples including a patient-derived xenograft (PDX) were analyzed by targeted exome sequencing followed by phylogenetic analysis.
Results:
Left- and right-lobe primary PC tumors appeared to diverge, with the right acquiring additional shared mutations and striking differences in copy number alterations that later appeared in metastatic samples during the treatment course and at autopsy, whereas the left base tumor maintained a quiet copy number alteration landscape and partitioned into a dead-end node. RB1 loss, a common finding in advanced castration-resistant disease, was identified throughout mCRPC samples, but not in the primary tumor. Significantly, a truncal EGFR-activating mutation (R108K) was identified in the primary tumor and was also found to be maintained in the mCRPC samples and in a PDX model. Furthermore, the PDX model remained sensitive to the EGFR inhibitor erlotinib, despite the presence of both RB1 and BRCA2 losses.
Conclusion:
These findings indicate that truncal alterations identified in primary PC can drive advanced mCRPC, even in the presence of additional strong oncogenic drivers (ie, RB1 and BRCA2 loss), and suggest that earlier detection and targeting of these truncal alterations may be effective at halting disease progression.
Insights
Targeting early prostate cancer (PC) drivers may halt castration-resistant disease progression. A truncal EGFR mutation in primary PC drove metastatic castration-resistant prostate cancer (mCRPC) and responded to EGFR inhibitors.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Metastatic prostate cancer (PC) initially responds to androgen receptor inhibition but progresses to castration-resistant prostate cancer (mCRPC).
- Targeting oncogenic drivers in early-stage PC might be more effective than in advanced mCRPC.
- Primary tumor analysis may miss metastatic drivers that are subclonal or acquired later.
Purpose of the Study:
- To investigate the genomic evolution of prostate cancer from primary to metastatic castration-resistant stages.
- To identify targetable drivers present in primary tumors that contribute to mCRPC.
- To assess the potential for early therapeutic intervention based on primary tumor alterations.
Main Methods:
- Targeted exome sequencing of PC samples from a single patient's clinical course.
- Analysis included diagnostic biopsies, metastatic biopsies (pre/post-enzalutamide), and rapid autopsy samples.
- Phylogenetic analysis was employed to reconstruct tumor evolution.
Main Results:
- Primary tumors from different lobes showed divergent evolution with distinct copy number alterations.
- RB1 loss, common in mCRPC, was absent in the primary tumor but present in metastatic samples.
- A truncal EGFR-activating mutation (R108K) found in the primary tumor was maintained in mCRPC and a patient-derived xenograft (PDX) model.
Conclusions:
- Truncal alterations in primary PC can drive mCRPC, even with concurrent RB1 and BRCA2 loss.
- Early detection and targeting of these truncal alterations may prevent disease progression.
- The PDX model remained sensitive to an EGFR inhibitor, supporting early targeted therapy.
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