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TET-mediated DNA demethylation controls gastrulation by regulating Lefty-Nodal signalling.
- Source :
-
Nature [Nature] 2016 Oct 27; Vol. 538 (7626), pp. 528-532. Date of Electronic Publication: 2016 Oct 19. - Publication Year :
- 2016
-
Abstract
- Mammalian genomes undergo epigenetic modifications, including cytosine methylation by DNA methyltransferases (DNMTs). Oxidation of 5-methylcytosine by the Ten-eleven translocation (TET) family of dioxygenases can lead to demethylation. Although cytosine methylation has key roles in several processes such as genomic imprinting and X-chromosome inactivation, the functional significance of cytosine methylation and demethylation in mouse embryogenesis remains to be fully determined. Here we show that inactivation of all three Tet genes in mice leads to gastrulation phenotypes, including primitive streak patterning defects in association with impaired maturation of axial mesoderm and failed specification of paraxial mesoderm, mimicking phenotypes in embryos with gain-of-function Nodal signalling. Introduction of a single mutant allele of Nodal in the Tet mutant background partially restored patterning, suggesting that hyperactive Nodal signalling contributes to the gastrulation failure of Tet mutants. Increased Nodal signalling is probably due to diminished expression of the Lefty1 and Lefty2 genes, which encode inhibitors of Nodal signalling. Moreover, reduction in Lefty gene expression is linked to elevated DNA methylation, as both Lefty-Nodal signalling and normal morphogenesis are largely restored in Tet-deficient embryos when the Dnmt3a and Dnmt3b genes are disrupted. Additionally, a point mutation in Tet that specifically abolishes the dioxygenase activity causes similar morphological and molecular abnormalities as the null mutation. Taken together, our results show that TET-mediated oxidation of 5-methylcytosine modulates Lefty-Nodal signalling by promoting demethylation in opposition to methylation by DNMT3A and DNMT3B. These findings reveal a fundamental epigenetic mechanism featuring dynamic DNA methylation and demethylation crucial to regulation of key signalling pathways in early body plan formation.
- Subjects :
- 5-Methylcytosine metabolism
Animals
DNA (Cytosine-5-)-Methyltransferases metabolism
DNA Methyltransferase 3A
DNA-Binding Proteins deficiency
DNA-Binding Proteins genetics
Dioxygenases deficiency
Dioxygenases genetics
Embryo, Mammalian embryology
Embryo, Mammalian enzymology
Embryo, Mammalian metabolism
Enhancer Elements, Genetic genetics
Epigenesis, Genetic
Female
Male
Mesoderm embryology
Mesoderm metabolism
Mice
Oxidation-Reduction
Promoter Regions, Genetic genetics
Proto-Oncogene Proteins deficiency
Proto-Oncogene Proteins genetics
DNA Methyltransferase 3B
DNA Methylation genetics
DNA-Binding Proteins metabolism
Dioxygenases metabolism
Gastrulation genetics
Left-Right Determination Factors metabolism
Nodal Protein metabolism
Proto-Oncogene Proteins metabolism
Signal Transduction genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1476-4687
- Volume :
- 538
- Issue :
- 7626
- Database :
- MEDLINE
- Journal :
- Nature
- Publication Type :
- Academic Journal
- Accession number :
- 27760115
- Full Text :
- https://doi.org/10.1038/nature20095