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Loss of Tet hydroxymethylase activity causes mouse embryonic stem cell differentiation bias and developmental defects.
- Source :
-
Science China. Life sciences [Sci China Life Sci] 2024 Oct; Vol. 67 (10), pp. 2132-2148. Date of Electronic Publication: 2024 Jul 05. - Publication Year :
- 2024
-
Abstract
- The TET family is well known for active DNA demethylation and plays important roles in regulating transcription, the epigenome and development. Nevertheless, previous studies using knockdown (KD) or knockout (KO) models to investigate the function of TET have faced challenges in distinguishing its enzymatic and nonenzymatic roles, as well as compensatory effects among TET family members, which has made the understanding of the enzymatic role of TET not accurate enough. To solve this problem, we successfully generated mice catalytically inactive for specific Tet members (Tet <superscript>m/m</superscript> ). We observed that, compared with the reported KO mice, mutant mice exhibited distinct developmental defects, including growth retardation, sex imbalance, infertility, and perinatal lethality. Notably, Tet <superscript>m/m</superscript> mouse embryonic stem cells (mESCs) were successfully established but entered an impaired developmental program, demonstrating extended pluripotency and defects in ectodermal differentiation caused by abnormal DNA methylation. Intriguingly, Tet3, traditionally considered less critical for mESCs due to its lower expression level, had a significant impact on the global hydroxymethylation, gene expression, and differentiation potential of mESCs. Notably, there were common regulatory regions between Tet1 and Tet3 in pluripotency regulation. In summary, our study provides a more accurate reference for the functional mechanism of Tet hydroxymethylase activity in mouse development and ESC pluripotency regulation.<br /> (© 2024. Science China Press.)
- Subjects :
- Animals
Female
Male
Mice
Gene Expression Regulation, Developmental
Mice, Knockout
Cell Differentiation
Dioxygenases genetics
Dioxygenases metabolism
DNA Methylation
DNA-Binding Proteins genetics
DNA-Binding Proteins metabolism
Mouse Embryonic Stem Cells metabolism
Mouse Embryonic Stem Cells cytology
Proto-Oncogene Proteins metabolism
Proto-Oncogene Proteins genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1869-1889
- Volume :
- 67
- Issue :
- 10
- Database :
- MEDLINE
- Journal :
- Science China. Life sciences
- Publication Type :
- Academic Journal
- Accession number :
- 39037697
- Full Text :
- https://doi.org/10.1007/s11427-024-2631-x