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Updated: Sep 28, 2025

Continuous Fluorescence-Based Endonuclease-Coupled DNA Methylation Assay to Screen for DNA Methyltransferase Inhibitors
Published on: August 5, 2022
KMT2C methyltransferase domain regulated INK4A expression suppresses prostate cancer metastasis
Tanja Limberger1,2, Michaela Schlederer1, Karolina Trachtová3,4,5
1Division of Experimental and Translational Pathology, Department of Pathology, Medical University of Vienna, 1090, Vienna, Austria.
Background:
Frequent truncation mutations of the histone lysine N-methyltransferase KMT2C have been detected by whole exome sequencing studies in various cancers, including malignancies of the prostate. However, the biological consequences of these alterations in prostate cancer have not yet been elucidated.
Methods:
To investigate the functional effects of these mutations, we deleted the C-terminal catalytic core motif of Kmt2c specifically in mouse prostate epithelium. We analysed the effect of Kmt2c SET domain deletion in a Pten-deficient PCa mouse model in vivo and of truncation mutations of KMT2C in a large number of prostate cancer patients.
Results:
We show here for the first time that impaired KMT2C methyltransferase activity drives proliferation and PIN formation and, when combined with loss of the tumour suppressor PTEN, triggers loss of senescence, metastatic dissemination and dramatically reduces life expectancy. In Kmt2c-mutated tumours we show enrichment of proliferative MYC gene signatures and loss of expression of the cell cycle repressor p16INK4A. In addition, we observe a striking reduction in disease-free survival of patients with KMT2C-mutated prostate cancer.
Conclusions:
We identified truncating events of KMT2C as drivers of proliferation and PIN formation. Loss of PTEN and KMT2C in prostate cancer results in loss of senescence, metastatic dissemination and reduced life expectancy. Our data demonstrate the prognostic significance of KMT2C mutation status in prostate cancer patients. Inhibition of the MYC signalling axis may be a viable treatment option for patients with KMT2C truncations and therefore poor prognosis.
Insights
Truncating mutations in histone methyltransferase KMT2C drive prostate cancer progression and metastasis. KMT2C alterations significantly reduce patient survival, suggesting MYC pathway inhibition as a potential therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Frequent truncation mutations in histone lysine N-methyltransferase KMT2C are observed in various cancers, including prostate cancer.
- The biological impact of KMT2C alterations in prostate cancer remains largely unknown.
Purpose of the Study:
- To investigate the functional consequences of KMT2C mutations in prostate cancer.
- To elucidate the role of KMT2C in tumor initiation, progression, and patient prognosis.
Main Methods:
- Deletion of the KMT2C C-terminal catalytic core motif in mouse prostate epithelium.
- Analysis in a Pten-deficient prostate cancer mouse model and human prostate cancer patient cohorts.
- Assessment of tumor proliferation, senescence, metastasis, and gene expression signatures.
Main Results:
- Impaired KMT2C methyltransferase activity promotes prostate cancer cell proliferation and prostatic intraepithelial neoplasia (PIN) formation.
- Combined loss of PTEN and KMT2C leads to loss of senescence, increased metastasis, and reduced survival.
- KMT2C-mutated tumors exhibit MYC gene signatures and loss of p16INK4A expression, correlating with reduced disease-free survival in patients.
Conclusions:
- Truncating KMT2C mutations are identified as drivers of prostate cancer proliferation and PIN.
- Loss of PTEN and KMT2C significantly impacts prostate cancer aggressiveness and patient prognosis.
- KMT2C mutation status holds prognostic significance, and MYC pathway inhibition may offer a therapeutic avenue for affected patients.
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