Epigenetic silencing of TET2 and TET3 induces an EMT-like process in melanoma
ONCOTARGET
Authors: Gong, Fuxing; Guo, Yu; Niu, Yiqian; Jin, Jiawei; Zhang, Xiaojuan; Shi, Xiaoqian; Zhang, Limeng; Li, Runting; Chen, Longxin; Ma, Runlin Z.
Abstract
Epithelial-Mesenchymal Transition (EMT) is a critical step in the progression of cancer. Malignant melanoma, a cancer developed from pigmented melanocytes, metastasizes through an EMT-like process. Ten-eleven translocation (TET) enzymes, catalyzing the conversion of 5-methylcytosine (5mC) to 5-hydroxylmethylcytosine (5-hmC), are down regulated in melanoma. However, their roles in the progression and the EMT-like process of melanoma are not fully understood. Here we report that DNA methylation induced silencing of TET2 and TET3 are responsible for the EMT-like process and the metastasis of melanoma. TET2 and TET3 are down regulated in the TGF-beta 1-induced EMT-like process, and the knocking down of TET2 or TET3 induced this EMT-like process. A DNA demethylating agent antagonized the TGF-beta-induced suppression of TET2 and TET3. Furthermore, a ChIP analysis indicated that enhanced recruitment of DNMT3A (DNA Methyltransferase 3A) is the mechanism by which TGF-beta induces the silencing of TET2 and TET3. Finally, the overexpression of the TET2 C-terminal sequence partially rescues the TGF-beta 1-induced EMT-like process in vitro and inhibits tumor growth and metastasis in vivo. Hence, our data suggest an epigenetic circuitry that mediates the EMT activated by TGF-beta. As an effector, DNMT3A senses the TGF-beta signal and silences TET2 and TET3 promoters to induce the EMT-like process and metastasis in melanoma.
TET3 Is Recruited by REST for Context-Specific Hydroxymethylation and Induction of Gene Expression
CELL REPORTS
Authors: Perera, Arshan; Eisen, David; Wagner, Mirko; Laube, Silvia K.; Kuenzel, Andrea F.; Koch, Susanne; Steinbacher, Jessica; Schulze, Elisabeth; Splith, Victoria; Mittermeier, Nana; Mueller, Markus; Biel, Martin; Carell, Thomas; Michalakis, Stylianos
Abstract
Ten-eleven translocation hydroxylases (TET1-3) oxidize 5-methylcytosine (5mC) to 5-hydroxymethylcytosine (5hmC). In neurons, increased 5hmC levels within gene bodies correlate positively with gene expression. The mechanisms controlling TET activity and 5hmC levels are poorly understood. In particular, it is not known how the neuronal TET3 isoform lacking a DNA-binding domain is targeted to the DNA. To identify factors binding to TET3, we screened for proteins that co-precipitate with TET3 from mouse retina and identified the transcriptional repressor REST as a highly enriched TET3-specific interactor. REST was able to enhance TET3 hydroxylase activity after co-expression and overexpression of TET3-activated transcription of REST target genes. Moreover, we found that TET3 also interacts with NSD3 and two other H3K36 methyltransferases and is able to induce H3K36 trimethylation. We propose a mechanism for transcriptional activation in neurons that involves REST-guided targeting of TET3 to the DNA for directed 5hmC generation and NSD3-mediated H3K36 trimethylation.