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Published on: April 12, 2013
A role for Xrcc2 in the early stages of mouse development
Julie Adam1, Bryan Deans, John Thacker
1Medical Research Council, Radiation & Genome Stability Unit, Harwell, Oxfordshire OX11 0RD, United Kingdom.
Abstract:
Xrcc2 is one of a family of five Rad51-like genes with important roles in the repair of DNA damage by homologous recombination (HR) in mammals. We have shown previously that loss of Xrcc2 in mice results in severe but variable developmental defects and embryonic lethality, potentially linked to excessive apoptosis. To look at the causes of lethality, and possibly to allow Xrcc2-/- mice to survive to birth, we have produced double knockout mice deficient in either the p53 oncoprotein or Ataxia telangiectasia mutated (Atm). Overall we show that the excessive apoptosis observed in Xrcc2-/- embryos is p53-dependent, and that loss of p53 can restore growth capacity to Xrcc2-/- fibroblasts in culture, but that it cannot rescue the embryonic lethality. Additionally, although the Xrcc2-/- Trp53-/- embryos show a near-normal morphology they remain relatively small in size. Loss of Atm in an Xrcc2-/- embryo has little effect, suggesting that response to loss of HR capacity is not mediated through the Atm kinase in the early stages of mouse development. Further, as seen by reduced expression of the early developmental marker, Delta-like1, the normal developmental programme is perturbed in Xrcc2-/- embryonic tissues, particularly during neurogenesis and somitogenesis. Taken together our data suggest that the accumulation of spontaneous damage in HR-deficient embryos has severe consequences for the development and survival of mammals due to the unregulated loss of cells important to the developmental programme.
Insights
Loss of Xrcc2 causes developmental defects and embryonic lethality in mice due to excessive, p53-dependent apoptosis. This DNA repair deficiency perturbs development, highlighting the critical role of homologous recombination in mammalian embryogenesis.
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Xrcc2 is crucial for homologous recombination (HR) DNA repair in mammals.
- Loss of Xrcc2 in mice leads to developmental defects and embryonic lethality, linked to excessive apoptosis.
Purpose of the Study:
- Investigate the causes of lethality in Xrcc2 knockout mice.
- Determine the role of p53 and Atm in Xrcc2-deficient embryonic lethality.
- Understand the impact of HR deficiency on mammalian development.
Main Methods:
- Generated double knockout mice (Xrcc2-/- with p53-/- or Atm-/-).
- Assessed apoptosis, cell growth, embryonic morphology, and developmental marker expression (Delta-like1).
- Analyzed the p53 and Atm dependency of developmental defects.
Main Results:
- Excessive apoptosis in Xrcc2-/- embryos is p53-dependent.
- Loss of p53 rescues fibroblast growth but not embryonic lethality.
- Loss of Atm has minimal impact on Xrcc2-/- embryonic development.
- Developmental programs, including neurogenesis and somitogenesis, are perturbed in Xrcc2-/- embryos.
Conclusions:
- p53-dependent apoptosis contributes to embryonic lethality in Xrcc2-deficient mice.
- Homologous recombination deficiency severely impacts mammalian development through spontaneous DNA damage accumulation and cell loss.
- The Atm kinase is not the primary mediator of the response to HR deficiency in early development.
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