Epigenetic Modifier SETD8 as a Therapeutic Target for High-Grade Serous Ovarian Cancer.
Miku WadaAsako KukitaKenbun SoneRyuji HamamotoSyuzo KanekoMasaaki KomatsuYu TakahashiFutaba InoueMachiko KojimaHarunori HonjohAyumi TaguchiTomoko KashiyamaYuichiro MiyamotoMichihiro TanikawaTetsushi TsurugaMayuyo Mori-UchinoOsamu Wada-HiraikeYutaka OsugaTomoyuki FujiiPublished in: Biomolecules (2020)
The histone methyltransferase SETD8, which methylates the lysine 20 of histone H4 (H4K20), is reportedly involved in human carcinogenesis along with nonhistone proteins such as p53. However, its expression profiles and functions in the context of high-grade serous ovarian carcinoma (HGSOC) are still unknown. The purpose of this study was to investigate the role of SETD8 in HGSOC. We performed quantitative real-time PCR and immunohistochemistry to detect the expression of SETD8 in HGSOC samples and normal ovarian specimens. Then, we assessed the effect of the inhibition of SETD8 expression using small interfering RNA (siRNA) and a selective inhibitor (UNC0379) on cell proliferation and apoptosis in HGSOC cells. The expression of SETD8 was significantly upregulated in clinical ovarian cancer specimens compared to that in the corresponding normal ovary. In addition, suppression of SETD8 expression in HGSOC cells with either siRNA or UNC0379 resulted in reduced levels of H4K20 monomethylation, inhibition of cell proliferation, and induction of apoptosis. Furthermore, UNC0379 showed a long-term antitumor effect against HGSOC cells, as demonstrated by colony-formation assays. SETD8 thus constitutes a promising therapeutic target for HGSOC, warranting further functional studies.
Keyphrases
- high grade
- cell cycle arrest
- induced apoptosis
- poor prognosis
- cell proliferation
- pi k akt
- cell death
- endoplasmic reticulum stress
- low grade
- oxidative stress
- binding protein
- dna methylation
- signaling pathway
- cell cycle
- endothelial cells
- long non coding rna
- real time pcr
- gene expression
- high throughput
- mass spectrometry
- fine needle aspiration
- case control
- single cell