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Updated: Feb 9, 2026

Application of MassSQUIRM for Quantitative Measurements of Lysine Demethylase Activity
Published on: March 11, 2012
ATR inhibition controls aggressive prostate tumors deficient in Y-linked histone demethylase KDM5D
Kazumasa Komura1,2,3, Yuki Yoshikawa1,2, Teppei Shimamura4
1Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, New York, USA.
Abstract:
Epigenetic modifications control cancer development and clonal evolution in various cancer types. Here, we show that loss of the male-specific histone demethylase lysine-specific demethylase 5D (KDM5D) encoded on the Y chromosome epigenetically modifies histone methylation marks and alters gene expression, resulting in aggressive prostate cancer. Fluorescent in situ hybridization demonstrated that segmental or total deletion of the Y chromosome in prostate cancer cells is one of the causes of decreased KDM5D mRNA expression. The result of ChIP-sequencing analysis revealed that KDM5D preferably binds to promoter regions with coenrichment of the motifs of crucial transcription factors that regulate the cell cycle. Loss of KDM5D expression with dysregulated H3K4me3 transcriptional marks was associated with acceleration of the cell cycle and mitotic entry, leading to increased DNA-replication stress. Analysis of multiple clinical data sets reproducibly showed that loss of expression of KDM5D confers a poorer prognosis. Notably, we also found stress-induced DNA damage on the serine/threonine protein kinase ATR with loss of KDM5D. In KDM5D-deficient cells, blocking ATR activity with an ATR inhibitor enhanced DNA damage, which led to subsequent apoptosis. These data start to elucidate the biological characteristics resulting from loss of KDM5D and also provide clues for a potential novel therapeutic approach for this subset of aggressive prostate cancer.
Insights
Loss of the Y-chromosome gene KDM5D drives aggressive prostate cancer by altering gene expression and cell cycle control. Targeting ATR offers a potential therapeutic strategy for KDM5D-deficient tumors.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Epigenetic modifications are crucial in cancer development and progression.
- The Y-chromosome-encoded histone demethylase KDM5D plays a role in regulating gene expression.
Purpose of the Study:
- To investigate the role of KDM5D loss in prostate cancer aggressiveness.
- To identify the molecular mechanisms by which KDM5D loss affects cancer cells.
- To explore potential therapeutic targets for KDM5D-deficient prostate cancer.
Main Methods:
- Fluorescent in situ hybridization to detect Y chromosome deletions.
- Chromatin immunoprecipitation sequencing (ChIP-seq) to identify KDM5D binding sites.
- Analysis of clinical datasets to correlate KDM5D expression with prognosis.
- In vitro studies using ATR inhibitors.
Main Results:
- Loss of KDM5D, often due to Y chromosome deletion, leads to altered histone methylation and gene expression.
- KDM5D binds to promoters regulating the cell cycle, and its loss accelerates cell cycle progression and DNA replication stress.
- Reduced KDM5D expression is linked to poorer prognosis in prostate cancer patients.
- KDM5D deficiency causes DNA damage and sensitizes cells to ATR inhibition, inducing apoptosis.
Conclusions:
- Loss of KDM5D is a key epigenetic driver of aggressive prostate cancer.
- Dysregulation of KDM5D impacts cell cycle control and DNA damage response pathways.
- Targeting ATR presents a promising therapeutic avenue for aggressive prostate cancer with KDM5D loss.
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