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Blastomere Explants to Test for Cell Fate Commitment During Embryonic Development
Published on: January 26, 2013
ATR expands embryonic stem cell fate potential in response to replication stress
Sina Atashpaz1, Sara Samadi Shams1, Javier Martin Gonzalez2
1IFOM-The FIRC Institute of Molecular Oncology, Milan, Italy.
Abstract:
Unrepaired DNA damage during embryonic development can be potentially inherited by a large population of cells. However, the quality control mechanisms that minimize the contribution of damaged cells to developing embryos remain poorly understood. Here, we uncovered an ATR- and CHK1-mediated transcriptional response to replication stress (RS) in mouse embryonic stem cells (ESCs) that induces genes expressed in totipotent two-cell (2C) stage embryos and 2C-like cells. This response is mediated by Dux, a multicopy retrogene defining the cleavage-specific transcriptional program in placental mammals. In response to RS, DUX triggers the transcription of 2C-like markers such as murine endogenous retrovirus-like elements (MERVL) and Zscan4. This response can also be elicited by ETAA1-mediated ATR activation in the absence of RS. ATR-mediated activation of DUX requires GRSF1-dependent post-transcriptional regulation of Dux mRNA. Strikingly, activation of ATR expands ESCs fate potential by extending their contribution to both embryonic and extra-embryonic tissues. These findings define a novel ATR dependent pathway involved in maintaining genome stability in developing embryos by controlling ESCs fate in response to RS.
Insights
A novel ATR pathway controls embryonic genome stability by activating DUX, which induces totipotent genes in response to replication stress. This maintains DNA integrity and expands embryonic stem cell fate potential.
Area of Science:
- Developmental Biology
- Genetics
- Cell Biology
Background:
- Unrepaired DNA damage in early development can affect many cells.
- Mechanisms controlling damaged cells in embryos are not well understood.
Purpose of the Study:
- To investigate the transcriptional response to replication stress in mouse embryonic stem cells (ESCs).
- To identify the role of ATR-CHK1 pathway and DUX in maintaining genome stability during embryonic development.
Main Methods:
- Analysis of ATR- and CHK1-mediated transcriptional response in mouse ESCs.
- Investigated the role of DUX in regulating 2C-like genes (MERVL, Zscan4).
- Studied ATR activation via ETAA1 and its effect on DUX mRNA regulation by GRSF1.
Main Results:
- Replication stress induces an ATR-CHK1-DUX pathway activating totipotent 2C-like genes.
- ETAA1-mediated ATR activation also triggers this response.
- GRSF1 regulates DUX mRNA post-transcriptionally for ATR-mediated activation.
- ATR activation expands ESCs' developmental potential to embryonic and extra-embryonic tissues.
Conclusions:
- A novel ATR-dependent pathway maintains genome stability in developing embryos.
- This pathway controls ESCs fate by regulating DUX in response to replication stress.
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