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Updated: Aug 19, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Cholesterol Triggers Nuclear Co-Association of Androgen Receptor, p160 Steroid Coactivators, and p300/CBP-Associated
Ruan Pimenta1,2, Juliana A Camargo3, Patrícia Candido3
1Laboratorio de Investigação Médica 55 (LIM55), Hospital das Clinicas HCFMUSP, Faculdade de Medicina, Universidade de São Paulo, São Paulo, Brazil, ruanpimenta22@gmail.com.
Background/Aims:
Cholesterol modulates intratumoral androgenic signaling in prostate cancer; however, the molecular mechanisms underlying these changes in castration-resistant prostate cancer (CRPC) are not fully elucidated. Herein, we investigated the effect of cholesterol on androgen receptor (AR) coactivators expression and tumorigenesis in vitro and in vivo.
Methods:
Herein, we monitored the expression of AR coactivators (SRC-1, 2, 3 and PCAF) genes in PC-3 cells exposed to 2µg/mL of cholesterol for 8 hours by qPCR. We also performed cell migration at 0, 8, 24, 48 and 72h and flow cytometry assays (viability, apoptosis, and cell cycle) after a 24h exposure. Immunofluorescence assay was performed to evaluate the protein expression of the AR coactivators. Additionally, in vivo experiments were conducted using 22 male NOD/SCID mice. Mice were fed a standard (Control) or hypercholesterolemic (HCOL) diet for 21 days and then subcutaneously implanted with PC-3 cells. The tumor volume was calculated every two days, and after four weeks, the tumors were resected, weighed, and the serum lipid profile was measured. We also measured the intratumoral lipid profile and AR coactivators gene and protein expression by qPCR and Western Blot, respectively. Intratumor testosterone and dihydrotestosterone (DHT) concentrations were determined using ELISA.
Results:
Cholesterol up-regulated the gene expression of coactivators SRC-1, SRC-2, SRC-3 and PCAF, increasing AR expression in PC-3 cells. Next, cholesterol-supplemented PC-3 cells exhibited increased cell migration and altered cell cycle phases, leading to changes in proliferation and reduced apoptosis. We found that SRC-1, SRC-2, SRC-3 and PCAF proteins co-localized in the nucleus of cholesterol-supplemented cells and co-associate with AR. In the in vivo model, the hypercholesterolemic (HCOL) group displayed higher serum total and intratumoral cholesterol levels, increased testosterone and dihydrotestosterone concentrations, and up-regulated AR coactivator expression. The tumor volume of the HCOL group was significantly higher than the control group.
Conclusion:
Our findings revealed that increased nuclear translocation of the coactivators leads to up-regulated AR gene and protein expression, potentially influencing tumor progression. Studies targeting cholesterol-modulated changes in AR coactivator expression may provide insights into the molecular mechanisms associated with the CRPC phenotype.
Insights
High cholesterol promotes prostate cancer growth by increasing androgen receptor (AR) coactivator expression and nuclear translocation. This molecular mechanism drives tumor progression in castration-resistant prostate cancer (CRPC).
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Cholesterol influences androgen signaling in prostate cancer.
- Mechanisms linking cholesterol to castration-resistant prostate cancer (CRPC) progression are not fully understood.
- Investigating cholesterol's role in AR coactivator expression and CRPC tumorigenesis is crucial.
Purpose of the Study:
- To determine the effect of cholesterol on androgen receptor (AR) coactivator expression.
- To investigate how cholesterol impacts AR coactivator expression and tumorigenesis in vitro and in vivo.
- To elucidate molecular mechanisms underlying cholesterol's role in CRPC.
Main Methods:
- Gene and protein expression of AR coactivators (SRC-1, SRC-2, SRC-3, PCAF) were analyzed in PC-3 cells treated with cholesterol.
- In vitro assays included cell migration, viability, apoptosis, and cell cycle analysis.
- In vivo studies utilized a hypercholesterolemic diet in mice xenografted with PC-3 cells, measuring tumor volume, lipid profiles, and AR coactivator expression.
Main Results:
- Cholesterol upregulated SRC-1, SRC-2, SRC-3, and PCAF gene and protein expression, increasing AR expression in PC-3 cells.
- Cholesterol-treated cells showed increased migration, altered cell cycle, enhanced proliferation, and reduced apoptosis.
- Hypercholesterolemic mice exhibited higher cholesterol levels, increased intratumoral testosterone/DHT, elevated AR coactivator expression, and significantly larger tumor volumes.
Conclusions:
- Increased nuclear translocation of AR coactivators, induced by cholesterol, upregulates AR expression and promotes tumor progression.
- Cholesterol-modulated AR coactivator expression is a key molecular mechanism in CRPC.
- Targeting cholesterol-mediated pathways may offer therapeutic strategies for CRPC.
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