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Updated: Dec 19, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Conditionally Reprogrammed Cells from Patient-Derived Xenograft to Model Neuroendocrine Prostate Cancer Development
Xinpei Ci1,2, Jun Hao1,2, Xin Dong2
1Vancouver Prostate Centre, Department of Urologic Sciences, Faculty of Medicine, University of British Columbia, Vancouver, BC V6H 3Z6, Canada.
Abstract:
Neuroendocrine prostate cancer (NEPC) is a lethal subtype of prostate cancer. It develops mainly via NE transdifferentiation of prostate adenocarcinoma in response to androgen receptor (AR)-inhibition therapy. The study of NEPC development has been hampered by a lack of clinically relevant models. We previously established a unique and first-in-field patient-derived xenograft (PDX) model of adenocarcinoma (LTL331)-to-NEPC (LTL331R) transdifferentiation. In this study, we applied conditional reprogramming (CR) culture to establish a LTL331 PDX-derived cancer cell line named LTL331_CR_Cell. These cells retain the same genomic mutations as the LTL331 parental tumor. They can be continuously propagated in vitro and can be genetically manipulated. Androgen deprivation treatment on LTL331_CR_Cells had no effect on cell proliferation. Transcriptomic analyses comparing the LTL331_CR_Cell to its parental tumor revealed a profound downregulation of the androgen response pathway and an upregulation of stem and basal cell marker genes. The transcriptome of LTL331_CR_Cells partially resembles that of post-castrated LTL331 xenografts in mice. Notably, when grafted under the renal capsules of male NOD/SCID mice, LTL331_CR_Cells spontaneously gave rise to NEPC tumors. This is evidenced by the histological expression of the NE marker CD56 and the loss of adenocarcinoma markers such as PSA. Transcriptomic analyses of the newly developed NEPC tumors further demonstrate marked enrichment of NEPC signature genes and loss of AR signaling genes. This study provides a novel research tool derived from a unique PDX model. It allows for the investigation of mechanisms underlying NEPC development by enabling gene manipulations ex vivo and subsequent functional evaluations in vivo.
Insights
A new cell line from patient-derived xenografts enables neuroendocrine prostate cancer (NEPC) research. This model mimics NEPC development, offering a tool to study treatment resistance and explore therapeutic strategies for this lethal cancer subtype.
Area of Science:
- Oncology
- Cancer Biology
- Translational Research
Background:
- Neuroendocrine prostate cancer (NEPC) is a lethal subtype of prostate cancer, often arising from adenocarcinoma transdifferentiation under androgen receptor (AR)-inhibitor therapy.
- The development of NEPC is challenging to study due to a lack of clinically relevant models.
- A unique patient-derived xenograft (PDX) model (LTL331) showing adenocarcinoma-to-NEPC transdifferentiation was previously established.
Purpose of the Study:
- To establish a novel, genetically manipulable cell line from a PDX model for studying NEPC development.
- To characterize the biological and transcriptomic properties of the new cell line.
- To validate the cell line's capacity to generate NEPC tumors in vivo.
Main Methods:
- Conditional reprogramming (CR) culture was used to establish a cell line (LTL331_CR_Cell) from the LTL331 PDX model.
- Genomic analysis confirmed retention of parental tumor mutations.
- Transcriptomic profiling and in vivo grafting into NOD/SCID mice were performed.
Main Results:
- LTL331_CR_Cells retained parental tumor genomics and showed no proliferation changes with androgen deprivation.
- Transcriptomic analysis revealed downregulation of AR signaling and upregulation of stem/basal cell markers, resembling post-castration xenografts.
- Grafted LTL331_CR_Cells spontaneously formed NEPC tumors in mice, confirmed by CD56 expression and loss of adenocarcinoma markers.
Conclusions:
- The LTL331_CR_Cell line is a novel, in vitro/in vivo research tool for NEPC.
- This model facilitates the investigation of NEPC development mechanisms through genetic manipulation.
- It enables functional evaluation of NEPC pathogenesis and potential therapeutic targets.

