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Updated: Jan 3, 2026

Prostate Organoid Cultures as Tools to Translate Genotypes and Mutational Profiles to Pharmacological Responses
Published on: October 24, 2019
Peroxisome proliferator-activated receptor gamma controls prostate cancer cell growth through AR-dependent and
Catherine C Elix1, Meghan M Salgia1, Maya Otto-Duessel1
1Department of Medical Oncology, City of Hope, Duarte, California.
Background:
Prostate cancer (PC) remains a leading cause of cancer mortality and the most successful chemopreventative and treatment strategies for PC come from targeting the androgen receptor (AR). Although AR plays a key role, it is likely that other molecular pathways also contribute to PC, making it essential to identify and develop drugs against novel targets. Recent studies have identified peroxisome proliferator-activated receptor gamma (PPARγ), a nuclear receptor that regulates fatty acid (FA) metabolism, as a novel target in PC, and suggest that inhibitors of PPARγ could be used to treat existing disease. We hypothesized that PPARγ acts through AR-dependent and independent mechanisms to control PC development and growth and that PPARγ inhibition is a viable PC treatment strategy.
Methods:
Immunohistochemistry was used to determine expression of PPARү in a cohort of patients with PC. Standard molecular techniques were used to investigate the PPARү signaling in PC cells as well a xenograft mouse model to test PPARү inhibition in vivo. Kaplan-Meier curves were created using cBioportal.
Results:
We confirmed the expression of PPARү in human PC. We then showed that small molecule inhibition of PPARγ decreases the growth of AR-positive and -negative PC cells in vitro and that T0070907, a potent PPARγ antagonist, significantly decreased the growth of human PC xenografts in nude mice. We found that PPARγ antagonists or small interfering RNA (siRNA) do not affect mitochondrial activity nor do they cause apoptosis; instead, they arrest the cell cycle. In AR-positive PC cells, antagonists and siRNAs reduce AR transcript and protein levels, which could contribute to growth inhibition. AR-independent effects on growth appear to be mediated by effects on FA metabolism as the specific FASN inhibitor, Fasnall, inhibited PC cell growth but did not have an additive effect when combined with PPARγ antagonists. Patients with increased PPARү target gene expression, but not alterations in PPARү itself, were found to have significantly worse overall survival.
Conclusions:
Having elucidated the direct cancer cell effects of PPARγ inhibition, our studies have helped to determine the role of PPARγ in PC growth, and support the hypothesis that PPARγ inhibition is an effective strategy for PC treatment.
Insights
Peroxisome proliferator-activated receptor gamma (PPARγ) inhibition effectively reduces prostate cancer (PC) cell growth through both androgen receptor (AR)-dependent and independent pathways. Targeting PPARγ represents a promising therapeutic strategy for treating prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Prostate cancer (PC) is a leading cause of cancer mortality.
- Androgen receptor (AR)-targeted therapies are successful but novel targets are needed.
- Peroxisome proliferator-activated receptor gamma (PPARγ) is identified as a novel target in PC, regulating fatty acid metabolism.
Purpose of the Study:
- To investigate the role of PPARγ in prostate cancer development and growth.
- To determine if PPARγ inhibition is a viable treatment strategy for PC.
- To elucidate the mechanisms of PPARγ action in PC, including AR-dependent and independent pathways.
Main Methods:
- Immunohistochemistry to assess PPARγ expression in human PC.
- In vitro studies using PC cell lines to investigate PPARγ signaling and inhibition.
- In vivo studies using a human PC xenograft mouse model to evaluate PPARγ antagonist efficacy.
- Analysis of patient data using cBioPortal for survival correlations.
Main Results:
- PPARγ expression confirmed in human PC.
- PPARγ inhibition decreased growth of both AR-positive and AR-negative PC cells in vitro.
- A PPARγ antagonist significantly reduced PC xenograft growth in mice.
- PPARγ inhibition led to cell cycle arrest, not apoptosis or altered mitochondrial activity.
- AR-positive cells showed reduced AR transcript and protein levels upon PPARγ inhibition.
- AR-independent effects were linked to fatty acid metabolism, with no additive effect of combined PPARγ and FASN inhibition.
- Increased PPARγ target gene expression correlated with worse patient survival.
Conclusions:
- PPARγ inhibition effectively reduces prostate cancer cell growth through direct mechanisms.
- PPARγ plays a significant role in PC growth via AR-dependent and independent pathways.
- PPARγ inhibition is a validated and promising therapeutic strategy for prostate cancer treatment.
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