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Updated: Sep 30, 2025

Comprehensive DNA Methylation Analysis Using a Methyl-CpG-binding Domain Capture-based Method in Chronic Lymphocytic Leukemia Patients
Published on: June 16, 2017
Impact of CYLD on chromatin structure and histone methylation in malignant melanoma
Mandy Schott1, Melanie Kappelmann-Fenzl1, Stefan Fischer2
1Institute of Biochemistry, Friedrich‑Alexander‑University Erlangen‑Nürnberg, D‑91054 Erlangen, Germany.
Abstract:
The tumor suppressive role of CYLD lysine 63 deubiquitinase (CYLD) is known in melanoma. To the best of our knowledge, however, the precise mechanism underlying the tumor suppressive function of CYLD has yet to be clarified. In the present study, a novel melanoma mouse model was generated, which revealed accelerated tumor growth in Cyld‑knockout (Cyld‑/‑) compared with Cyld‑wild‑type (Cyld+/+) mice. To determine the underlying molecular mechanism, mutation analysis of primary tumor‑derived cell lines from Cyld+/+ and Cyld‑/‑ mice was performed using RNA sequencing data. Variant calling revealed no common mutations in Cyld‑/‑ compared with Cyld+/+ cells. Thus, the epigenetic processes influencing development and progression of melanoma were investigated. Initial analysis of expression pattern of known hypermethylated genes in melanoma (suppressor of cytokine signalling, methylthioadenosine phosphorylase, cadherin 1) in the presence or absence of 5'‑Aza‑deoxyctidine treatment revealed that CYLD does not play a key role in DNA methylation. Chromatin accessibility and histone H3 modification assay uncovered a role of CYLD in the formation of chromatin structure. Subsequent inhibitor experiments confirmed the effect of CYLD on H3K9me2 level associated with heterochromatin. Furthermore, enhanced H3K9 dimethylation in Cyld‑/‑ melanoma cells was associated with upregulation of euchromatic histone lysine methyltransferase 2 (EHMT2). Moreover, the specific inhibitor of EHMT2, CM272, resulted in decreased proliferation and relaxation of compact chromatin in Cyld‑deficient melanoma cells. These results reveal a novel role of CYLD in histone methylation and chromatin packaging.
Insights
The tumor suppressor CYLD (cylindromatosis) deubiquitinase impacts melanoma by regulating chromatin structure. CYLD deficiency accelerates tumor growth via altered histone methylation and chromatin packaging.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- The tumor suppressive role of CYLD (cylindromatosis) deubiquitinase is established in melanoma.
- The precise molecular mechanisms of CYLD's tumor suppressive function remain unclear.
Purpose of the Study:
- To elucidate the underlying molecular mechanism of CYLD's tumor suppressive function in melanoma.
- To investigate the role of CYLD in epigenetic regulation and chromatin structure during melanoma development.
Main Methods:
- Generation of a novel melanoma mouse model (Cyld-knockout vs. wild-type).
- RNA sequencing for mutation analysis.
- Chromatin accessibility and histone modification assays.
- Inhibitor experiments targeting EHMT2.
Main Results:
- Cyld-knockout mice exhibited accelerated melanoma tumor growth.
- CYLD deficiency did not involve DNA methylation changes but affected chromatin structure.
- CYLD influences H3K9me2 levels and heterochromatin formation.
- CYLD deficiency led to EHMT2 upregulation, increased H3K9 dimethylation, and altered chromatin compaction.
- EHMT2 inhibition (CM272) reduced proliferation and relaxed chromatin in Cyld-deficient cells.
Conclusions:
- CYLD plays a novel role in regulating histone methylation and chromatin packaging in melanoma.
- CYLD's function in maintaining proper chromatin structure is critical for tumor suppression.
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