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Tillo, D.

Publications and source records attributed to Tillo, D..

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The ETS Transcription Factor ERF controls the exit from the naive pluripotent state

The naive epiblast undergoes a transition to a pluripotent primed state during embryo implantation. Despite the relevance of the FGF pathway during this period, little is known about the downstream effectors regulating this signaling. Here, we examined the molecular mechanisms coordinating the naive to primed transition by using inducible ESC to genetically eliminate all RAS proteins. We show that differentiated RASKO ESC remain trapped in an intermediate state of pluripotency with naive-associated features. Elimination of the transcription factor ERF overcomes the developmental blockage of RAS-deficient cells by naive enhancer decommissioning. Mechanistically, ERF regulates NANOG expression and ensures naive pluripotency by strengthening naive transcription factor binding at ESC enhancers. Moreover, ERF negatively regulates the expression of the de novo methyltransferase DNMT3B, which participates in the extinction of the naive transcriptional program. Collectively, we demonstrated an essential role for ERF controlling the exit from naive pluripotency during the progression to primed pluripotency. TeaserERF is the MAPK-dependent switch controlling the transition between naive and primed pluripotency during embryonic development.

developmental biology

CTCF is a Barrier for Totipotent-like Reprogramming

Totipotent cells have the ability of generating embryonic and extra-embryonic tissues1,2. Interestingly, a rare population of cells with totipotent-like potential was identified within ESC cultures3. These cells, known as 2 cell (2C)-like cells, arise from ESC and display similar features to those found in the totipotent 2 cell embryo2-4. However, the molecular determinants of 2C-like conversion have not been completely elucidated. Here, we show that CTCF is a barrier for 2C-like reprogramming. Indeed, forced conversion to a 2C-like state by DUX expression was associated with DNA damage at a subset of CTCF binding sites. Endogenous or DUX-induced 2C-like ESC showed decreased CTCF enrichment at known binding sites, suggesting that acquisition of a totipotent-like state is associated with a highly dynamic chromatin architecture. Accordingly, depletion of CTCF in ESC efficiently promoted spontaneous and asynchronous conversion to a totipotent-like state. This phenotypic reprogramming was reversible upon restoration of CTCF levels. Furthermore, we showed that transcriptional activation of the ZSCAN4 cluster was necessary for successful 2C-like reprogramming. In summary, we revealed the intimate relation between CTCF and totipotent-like reprogramming.

developmental biology