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Updated: Jan 28, 2026

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Oncogenic and osteolytic functions of histone demethylase NO66 in castration-resistant prostate cancer
Krishna M Sinha1,2, Rozita Bagheri-Yarmand3, Sharmistha Lahiri3
1Endocrine Neoplasia and Hormonal Disorders, The University of Texas MD Anderson Cancer Center, Houston, TX, USA. Krishna.M.Sinha@uth.tmc.edu.
Abstract:
Epigenetic changes that cause dysregulated gene expression during progression of androgen-independent prostate cancer (PCa) and metastatic skeletal lesions remain elusive. Here, we explored the role of histone demethylase NO66 in the pathogenesis of PCa and bone metastasis-related skeletal lesions. Tissue and cDNA microarrays of PCa were analyzed for NO66 mRNA and protein levels. We examined the effects of gain and loss of NO66 function on cell viability, colony formation, migration, invasion, and tumor-induced skeletal lesions in femoral bone. RNAseq and ChIPseq were performed to elucidate NO66-target genes in PCa. We report that NO66 levels were upregulated in advanced primary prostate tumors compared to normal tissue or tumors with low Gleason scores. Forced expression of NO66 promoted cell survival and invasion of PCa cells; whereas, knockdown of NO66 resulted in decreased cell survival and increased sensitivity to docetaxel. NO66-overexpressing PC3 cells implanted into the femoral bone of male SCID mice caused massive bone loss and stimulation of mouse osteoclast-promoting genes, including Dickkopf1, Cathepsin K, Nf-kβ,; and Calcr, suggesting a role for NO66 in tumor growth in bone and osteoclast activity. Combined RNAseq and ChIP-seq revealed that NO66 activates the survival gene MCL1, the invasion-associated genes IGFBP5 and MMP3, the pro-oncogenic genes CTNNB1 and CCND1, and the epigenetic modifier gene KMT2A in androgen-independent PCa. Our findings uncover the role of NO66 as a key oncogenic driver in PCa, causing osteolytic lesions through upstream epigenetic regulation of key genes for survival, invasion and metastasis, and pro-osteoclastic factors.
Insights
Histone demethylase NO66 drives prostate cancer (PCa) progression and bone metastasis by epigenetically regulating key genes. Its inhibition enhances docetaxel sensitivity and reduces osteolytic lesions, revealing NO66 as a therapeutic target.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Androgen-independent prostate cancer (PCa) progression and bone metastasis involve complex epigenetic dysregulation.
- The role of histone demethylase NO66 in PCa pathogenesis and skeletal lesion development is not well understood.
Purpose of the Study:
- To investigate the role of NO66 in PCa progression, bone metastasis, and associated skeletal lesions.
- To identify NO66-target genes in androgen-independent PCa.
Main Methods:
- Analysis of NO66 mRNA and protein levels in PCa tissues.
- In vitro studies on PCa cell viability, colony formation, migration, and invasion with NO66 gain/loss of function.
- In vivo studies of NO66 effects on tumor-induced skeletal lesions in mice.
- RNA sequencing (RNAseq) and Chromatin Immunoprecipitation sequencing (ChIPseq) to identify NO66 targets.
Main Results:
- NO66 levels are upregulated in advanced PCa and correlate with Gleason score.
- NO66 overexpression enhances PCa cell survival and invasion, while knockdown increases docetaxel sensitivity.
- NO66 promotes bone loss and osteoclast activity in vivo.
- NO66 upregulates survival (MCL1), invasion (IGFBP5, MMP3), oncogenic (CTNNB1, CCND1), and epigenetic modifier (KMT2A) genes.
Conclusions:
- NO66 is a key oncogenic driver in PCa, promoting androgen-independent progression and bone metastasis.
- NO66 contributes to osteolytic bone lesions via epigenetic regulation of target genes and osteoclast activity.
- Targeting NO66 may offer a therapeutic strategy for advanced PCa with bone metastasis.
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