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Updated: Feb 4, 2026

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Loss of dihydrotestosterone-inactivation activity promotes prostate cancer castration resistance detectable by
Ziqi Zhu1, Yoon-Mi Chung1, Olga Sergeeva2
1From the Genitourinary Malignancies Research Center, Department of Cancer Biology, Lerner Research Institute.
Abstract:
Androgens such as testosterone and dihydrotestosterone are a critical driver of prostate cancer progression. Cancer resistance to androgen deprivation therapies ensues when tumors engage metabolic processes that produce sustained androgen levels in the tissue. However, the molecular mechanisms involved in this resistance process are unclear, and functional imaging modalities that predict impending resistance are lacking. Here, using the human LNCaP and C4-2 cell line models of prostate cancer, we show that castration treatment-sensitive prostate cancer cells that normally have an intact glucuronidation pathway that rapidly conjugates and inactivates dihydrotestosterone and thereby limits androgen signaling, become glucuronidation deficient and resistant to androgen deprivation. Mechanistically, using CRISPR/Cas9-mediated gene ablation, we found that loss of UDP glucuronosyltransferase family 2 member B15 (UGT2B15) and UGT2B17 is sufficient to restore free dihydrotestosterone, sustained androgen signaling, and development of castration resistance. Furthermore, loss of glucuronidation enzymatic activity was also detectable with a nonsteroid glucuronidation substrate. Of note, glucuronidation-incompetent cells and the resultant loss of intracellular conjugated dihydrotestosterone were detectable in vivo by 18F-dihydrotestosterone PET. Together, these findings couple a mechanism with a functional imaging modality to identify impending castration resistance in prostate cancers.
Insights
Prostate cancer cells become resistant to treatment by losing glucuronidation, which inactivates dihydrotestosterone. This loss can be detected using 18F-dihydrotestosterone PET imaging, predicting treatment resistance.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Androgens like testosterone drive prostate cancer progression.
- Resistance to androgen deprivation therapy (ADT) occurs when tumors sustain androgen levels.
- Molecular mechanisms and predictive imaging for ADT resistance remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of ADT resistance in prostate cancer.
- To identify functional imaging modalities for predicting ADT resistance.
Main Methods:
- Utilized human LNCaP and C4-2 prostate cancer cell line models.
- Employed CRISPR/Cas9-mediated gene ablation to study UDP glucuronosyltransferase (UGT) family genes.
- Applied 18F-dihydrotestosterone Positron Emission Tomography (PET) for in vivo imaging.
Main Results:
- Castration-sensitive prostate cancer cells losing glucuronidation pathway activity become resistant to ADT.
- Loss of UGT2B15 and UGT2B17 expression restores free dihydrotestosterone and promotes castration resistance.
- Impaired glucuronidation and reduced intracellular conjugated dihydrotestosterone are detectable in vivo via 18F-dihydrotestosterone PET.
Conclusions:
- Loss of UGT2B15/UGT2B17-mediated glucuronidation is a key mechanism for developing castration resistance.
- 18F-dihydrotestosterone PET imaging can detect glucuronidation deficiency, predicting impending ADT resistance in prostate cancer.
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