Epigenetic downregulation of TET3 reduces genome-wide 5hmC levels and promotes glioblastoma tumorigenesis.
Antonella CarellaJuan R TejedorMaría G GarcíaRocío G UrdinguioGustavo F BayónMarta SierraVirginia LópezEstela García-TorañoPablo Santamarina-OjedaRaúl F PérezTimothée BigotCristina MangasMaría D Corte-TorresInés Sáenz-de-Santa-MaríaManuela MollejoBárbara MeléndezAurora AstudilloMaría-Dolores ChiaraAgustín F FernándezMario Fernández FragaPublished in: International journal of cancer (2019)
Loss of 5-hydroxymethylcytosine (5hmC) has been associated with mutations of the ten-eleven translocation (TET) enzymes in several types of cancer. However, tumors with wild-type TET genes can also display low 5hmC levels, suggesting that other mechanisms involved in gene regulation might be implicated in the decline of this epigenetic mark. Here we show that DNA hypermethylation and loss of DNA hydroxymethylation, as well as a marked reduction of activating histone marks in the TET3 gene, impair TET3 expression and lead to a genome-wide reduction in 5hmC levels in glioma samples and cancer cell lines. Epigenetic drugs increased expression of TET3 in glioblastoma cells and ectopic overexpression of TET3 impaired in vitro cell growth and markedly reduced tumor formation in immunodeficient mice models. TET3 overexpression partially restored the genome-wide patterns of 5hmC characteristic of control brain samples in glioblastoma cell lines, while elevated TET3 mRNA levels were correlated with better prognosis in glioma samples. Our results suggest that epigenetic repression of TET3 might promote glioblastoma tumorigenesis through the genome-wide alteration of 5hmC.
Keyphrases
- genome wide
- dna methylation
- gene expression
- poor prognosis
- cell proliferation
- signaling pathway
- wild type
- papillary thyroid
- squamous cell carcinoma
- type diabetes
- adipose tissue
- multiple sclerosis
- metabolic syndrome
- single molecule
- brain injury
- binding protein
- cell death
- genome wide identification
- squamous cell
- white matter
- subarachnoid hemorrhage
- cell cycle arrest
- resting state
- genome wide analysis
- childhood cancer
- high fat diet induced
- lymph node metastasis