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TDG orchestrates ATF4-dependent gene transcription during retinoic acid-induced cell fate acquisition

Turpin, M.; Madigou, T.; Bizot, M.; Acker, R.; Watrin, E.; Benoit, G.; Sawvell, K.; Avner, S.; Palierne, G.; Fourgeux, C.; Braud, M.; Poschmann, J.; Le Peron, C.; Salbert, G.

2024-04-01 genomics
10.1101/2024.04.01.587571 bioRxiv
Show abstract

Acquisition of cell identity is associated with a remodeling of the epigenome in part through active DNA demethylation. The T:G mismatch DNA glycosylase (TDG) participates to this process by removing 5-methylcytosines that have been oxidized by Ten-Eleven-Translocation (TET) enzymes. Despite this well-defined molecular function, a comprehensive view of the biological function of TDG is still lacking, especially during cell differentiation. Here, we combined transcriptomic and epigenomic approaches in a Tdg knock-out epiblast stem-like cell model to decipher TDG function in pluripotent cells and their retinoic acid-induced progeny. We determined that TDG occupies a majority of active promoters, a large fraction of which are also engaged by the transcription factor ATF4. Consistently, neural fate commitment upon retinoic acid treatment is associated with a TDG-dependent sustained expression of ATF4-dependent genes, in relation with a TDG-associated nucleosome positioning at promoters. We further evidenced that TDG maintains ATF4 pathway activity by positively regulating the mammalian target of rapamycin complex 1 (mTORC1), favoring neural cell fate commitment. These observations highlight the central role of TDG in cell differentiation and support a model linking metabolic reprogramming to cell fate acquisition.

Published in Nucleic Acids Research (predicted rank #7) · training set

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