The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
about
Modulation of cell cycle control during oocyte-to-embryo transitionsOverexpression of CDC14B causes mitotic arrest and inhibits zygotic genome activation in mouse preimplantation embryos.Concise Review: Control of Cell Fate Through Cell Cycle and Pluripotency Networks.Regulation of Cell Division.Aurora kinase A is essential for correct chromosome segregation in mouse zygote.Delayed APC/C activation extends the first mitosis of mouse embryos.4D imaging reveals a shift in chromosome segregation dynamics during mouse pre-implantation development.Polo-like kinase 1 is essential for the first mitotic division in the mouse embryo.Oxidative Stress Delays Prometaphase/Metaphase of the First Cleavage in Mouse Zygotes via the MAD2L1-Mediated Spindle Assembly Checkpoint.Chromosome segregation regulation in human zygotes: altered mitotic histone phosphorylation dynamics underlying centromeric targeting of the chromosomal passenger complex.
P2860
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P2860
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
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The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
@en
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
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label
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
@en
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
@nl
prefLabel
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
@en
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest.
@nl
P2093
P50
P1476
The first mitosis of the mouse embryo is prolonged by transitional metaphase arrest
@en
P2093
Anna Hupalowska
Marta Sikora-Polaczek
Zbigniew Polanski
P304
P356
10.1095/BIOLREPROD.105.047092
P407
P577
2005-12-28T00:00:00Z