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Updated: Jul 11, 2026

Chromatin Immunoprecipitation Assay for Tissue-specific Genes using Early-stage Mouse Embryos
Published on: April 29, 2011
Mos and the mitogen-activated protein kinase do not show cytostatic factor activity in early mouse embryos
Koji Kashima1, Kiyoshi Kano, Kunihiko Naito
1Laboratory of Applied Genetics, Graduate School of Agriculture and Life Science, University of Tokyo, Japan.
Abstract:
Mos and the mitogen-activated protein kinase (MAPK) cascade have been established as crucial regulators of second meiotic metaphase arrest, the so-called CSF arrest, in mammalian oocytes. They are also thought to play a role in regulating mitotic metaphase arrest of early mammalian embryos. In the present study, we examined whether mitotic arrest is induced in early mouse embryos by activation of extracellular signal-regulated kinases (ERKs), which are major MAPKs in mouse eggs, and their substrate, p90Ribosomal S6 kinase (RSK), as reported in Xenopus embryos. Wild-type Mos (wt-Mos), degradation-resistant Mos mutant (P2G-Mos) or constitutive active mutant of MAPK/ERK kinase, MEK (SDSE-MEK), was expressed in early mouse embryos by injecting the respective expression vectors into the pronucleus of fertilized eggs, and the developmental rates were then examined up to 72 h after insemination. Expression of P2G-Mos and SDSE-MEK succeeded in activating ERKs and RSK in developing mouse embryos, while wt-Mos failed to activate them in spite of expression of mos mRNA, indicating that the wt-Mos protein is unstable in early mouse embryos. Although the activated levels of ERKs and RSK in the vector-injected embryos were comparable to those of meiotically arrested mouse oocytes, their developmental rates were identical to those of the control embryos. These results suggest that activation of MAPK and RSK does not induce mitotic arrest in early mouse embryos. The present study indicates that there are large physiological differences between early mouse embryos and mouse oocytes and that CSF arrest of mouse eggs in mitosis should be discussed separately from that in meiosis.
Insights
Mitogen-activated protein kinase (MAPK) activation does not induce mitotic arrest in early mouse embryos, unlike in oocytes. This suggests significant physiological differences between embryonic and oocyte cell cycle regulation.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Mos and the MAPK cascade regulate meiotic arrest (CSF arrest) in mammalian oocytes.
- A similar role in mitotic metaphase arrest of early mammalian embryos is hypothesized.
Purpose of the Study:
- To investigate if activating extracellular signal-regulated kinases (ERKs) and p90Ribosomal S6 kinase (RSK) induces mitotic arrest in early mouse embryos.
- To compare the mechanisms of cell cycle arrest in oocytes and early embryos.
Main Methods:
- Expression of Mos mutants (wt-Mos, P2G-Mos) and a constitutively active MEK mutant (SDSE-MEK) in fertilized mouse eggs via pronuclear injection.
- Analysis of ERK and RSK activation levels.
- Examination of embryonic developmental rates up to 72 hours post-insemination.
Main Results:
- P2G-Mos and SDSE-MEK successfully activated ERKs and RSK in embryos; wt-Mos did not due to protein instability.
- Activated ERK and RSK levels in embryos were comparable to those in arrested oocytes.
- Embryo development rates were unaffected by the induced MAPK/RSK activation.
Conclusions:
- Activation of MAPK and RSK does not induce mitotic arrest in early mouse embryos.
- Significant physiological differences exist between early mouse embryos and oocytes regarding cell cycle control.
- Mitotic arrest in early embryos should be studied separately from meiotic CSF arrest in oocytes.
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