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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
HE3235 inhibits growth of castration-resistant prostate cancer
Theodore D Koreckij1, Richard J Trauger, Robert Bruce Montgomery
1Department of Urology, University of Washington, Seattle, WA 98195, USA.
Abstract:
Treatments for advanced prostate cancer (CaP) typically involve androgen deprivation therapy. However, most patients eventually develop castration-resistant CaP (CRPC) for which highly effective therapies are limited. We explored the efficacy of a novel agent, HE3235, in inhibiting growth of CRPC in preclinical models. Castrated male mice were implanted subcutaneously with LuCaP35V CaP xenografts in the presence and absence of 5'-androstenediol (AED) and treated with HE3235. To investigate the effect of HE3235 on CaP tumor in the bone, castrated mice were injected intratibially with C4-2B CaP cells and treated with HE3235. Serum prostate-specific antigen (PSA) levels, tumor volume, immunohistochemistry, gene expression, and levels of intratumoral androgens were analyzed. HE3235 significantly prolonged the tumor doubling time of LuCaP35V, decreased androgen receptor expression, and lowered levels of intratumoral testosterone by approximately 89% and dihydrotestosterone by approximately 63% in both the presence and the absence of AED. HE3235 inhibited tumor growth in the bone environment. Weights of tumored tibiae of HE3235-treated animals were lower than those of control (P = .031), and normalized PSA levels were also significantly decreased at the end of study by HE3235 treatment (P = .0076). HE3235 inhibits the growth of subcutaneous CRPC as well as CRPC in the bone environment. Our data show that HE3235 exhibits a wide range of effects, including alteration of androgen receptor signaling and reductions in levels of intratumoral androgens. Our results support ongoing clinical investigations into the effectiveness of HE3235 in the setting of CRPC and warrants further studies into the mechanisms behind the effects of HE3235.
Insights
A novel agent, HE3235, effectively inhibits castration-resistant prostate cancer (CRPC) growth in preclinical models. HE3235 reduces tumor volume and intratumoral androgens, supporting its clinical investigation for advanced prostate cancer treatment.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Advanced prostate cancer (CaP) often progresses to castration-resistant prostate cancer (CRPC).
- Current therapies for CRPC are limited, necessitating novel treatment strategies.
- Androgen deprivation therapy is a standard treatment, but resistance develops.
Purpose of the Study:
- To evaluate the efficacy of HE3235 in inhibiting CRPC growth in preclinical models.
- To investigate HE3235's effects on subcutaneous and bone-metastatic CRPC.
- To explore the mechanisms underlying HE3235's anti-cancer activity.
Main Methods:
- HE3235 efficacy was tested in castrated mice with subcutaneous LuCaP35V CaP xenografts and intratibial C4-2B CaP cell injections.
- Tumor growth, serum prostate-specific antigen (PSA) levels, intratumoral androgens, and androgen receptor expression were analyzed.
- Gene expression and immunohistochemistry were performed to elucidate mechanisms.
Main Results:
- HE3235 significantly prolonged tumor doubling time and reduced tumor volume in subcutaneous models.
- HE3235 decreased intratumoral testosterone by ~89% and dihydrotestosterone by ~63%.
- HE3235 inhibited CRPC growth in the bone environment, evidenced by reduced tibial weights and normalized PSA levels.
Conclusions:
- HE3235 demonstrates significant anti-tumor activity against both subcutaneous and bone-metastatic CRPC.
- HE3235 exerts its effects by altering androgen receptor signaling and reducing intratumoral androgens.
- These findings support ongoing clinical trials of HE3235 for CRPC and warrant further mechanistic studies.
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