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Updated: Oct 21, 2025

Murine Prostate Micro-dissection and Surgical Castration
Published on: May 11, 2016
AR-negative prostate cancer is vulnerable to loss of JMJD1C demethylase
Yohei Yoshihama1, Kyle A LaBella1, Eiru Kim2
1Department of Cancer Biology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030.
Abstract:
Prostate cancer is a leading cause of cancer-related mortality in men. The widespread use of androgen receptor (AR) inhibitors has generated an increased incidence of AR-negative prostate cancer, triggering the need for effective therapies for such patients. Here, analysis of public genome-wide CRISPR screens in human prostate cancer cell lines identified histone demethylase JMJD1C (KDM3C) as an AR-negative context-specific vulnerability. Secondary validation studies in multiple cell lines and organoids, including isogenic models, confirmed that small hairpin RNA (shRNA)-mediated depletion of JMJD1C potently inhibited growth specifically in AR-negative prostate cancer cells. To explore the cooperative interactions of AR and JMJD1C, we performed comparative transcriptomics of 1) isogenic AR-positive versus AR-negative prostate cancer cells, 2) AR-positive versus AR-negative prostate cancer tumors, and 3) isogenic JMJD1C-expressing versus JMJD1C-depleted AR-negative prostate cancer cells. Loss of AR or JMJD1C generates a modest tumor necrosis factor alpha (TNFα) signature, whereas combined loss of AR and JMJD1C strongly up-regulates the TNFα signature in human prostate cancer, suggesting TNFα signaling as a point of convergence for the combined actions of AR and JMJD1C. Correspondingly, AR-negative prostate cancer cells showed exquisite sensitivity to TNFα treatment and, conversely, TNFα pathway inhibition via inhibition of its downstream effector MAP4K4 partially reversed the growth defect of JMJD1C-depleted AR-negative prostate cancer cells. Given the deleterious systemic side effects of TNFα therapy in humans and the viability of JMJD1C-knockout mice, the identification of JMJD1C inhibition as a specific vulnerability in AR-negative prostate cancer may provide an alternative drug target for prostate cancer patients progressing on AR inhibitor therapy.
Insights
Histone demethylase JMJD1C is a specific vulnerability in androgen receptor-negative prostate cancer. Inhibiting JMJD1C offers a potential new therapeutic strategy for patients resistant to current treatments.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Prostate cancer is a major cause of male cancer mortality.
- Androgen receptor (AR) inhibitors lead to AR-negative prostate cancer, requiring new therapies.
- Histone demethylase JMJD1C (KDM3C) is identified as a potential therapeutic target.
Purpose of the Study:
- To identify vulnerabilities in AR-negative prostate cancer.
- To investigate the role of JMJD1C in AR-negative prostate cancer growth.
- To explore the interplay between AR, JMJD1C, and TNFα signaling.
Main Methods:
- Genome-wide CRISPR screens in prostate cancer cell lines.
- Validation studies using cell lines, organoids, and isogenic models.
- Comparative transcriptomics to analyze gene expression changes.
- Assessment of TNFα signaling and its downstream effectors.
Main Results:
- JMJD1C depletion specifically inhibited AR-negative prostate cancer cell growth.
- Combined loss of AR and JMJD1C strongly upregulated TNFα signature.
- AR-negative prostate cancer cells were sensitive to TNFα treatment.
- MAP4K4 inhibition partially reversed growth defects in JMJD1C-depleted cells.
Conclusions:
- JMJD1C is a context-specific vulnerability in AR-negative prostate cancer.
- TNFα signaling is a convergence point for AR and JMJD1C.
- JMJD1C inhibition presents a potential alternative drug target for advanced prostate cancer.
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