» Articles » PMID: 24794628

A Close Look at the Mammalian Blastocyst: Epiblast and Primitive Endoderm Formation

Overview
Publisher Springer
Specialty Biology
Date 2014 May 6
PMID 24794628
Citations 25
Authors
Affiliations
Soon will be listed here.
Abstract

During early development, the mammalian embryo undergoes a series of profound changes that lead to the formation of two extraembryonic tissues--the trophectoderm and the primitive endoderm. These tissues encapsulate the pluripotent epiblast at the time of implantation. The current model proposes that the formation of these lineages results from two consecutive binary cell fate decisions. The first controls the formation of the trophectoderm and the inner cell mass, and the second controls the formation of the primitive endoderm and the epiblast within the inner cell mass. While early mammalian embryos develop with extensive plasticity, the embryonic pattern prior to implantation is remarkably reproducible. Here, we review the molecular mechanisms driving the cell fate decision between primitive endoderm and epiblast in the mouse embryo and integrate data from recent studies into the current model of the molecular network regulating the segregation between these lineages and their subsequent differentiation.

Citing Articles

Defining core signaling pathways for supporting in vitro maintenance of pig extraembryonic endoderm (XEN) cells.

Jeong J, Lee D, Choi K, Kim D, Lee S, Oh J Reproduction. 2025; 169(4).

PMID: 40019752 PMC: 11906125. DOI: 10.1530/REP-24-0393.


Using high throughput screens to predict miscarriages with placental stem cells and long-term stress effects with embryonic stem cells.

E Puscheck E, Ruden X, Singh A, Abdulhasan M, Ruden D, Awonuga A Birth Defects Res. 2022; 114(16):1014-1036.

PMID: 35979652 PMC: 10108263. DOI: 10.1002/bdr2.2079.


Modeling Epiblast Shape in Implanting Mammalian Embryos.

Dokmegang J Methods Mol Biol. 2022; 2490:281-296.

PMID: 35486253 DOI: 10.1007/978-1-0716-2281-0_20.


The proteome, not the transcriptome, predicts that oocyte superovulation affects embryonic phenotypes in mice.

Taher L, Israel S, Drexler H, Makalowski W, Suzuki Y, Fuellen G Sci Rep. 2021; 11(1):23731.

PMID: 34887460 PMC: 8660899. DOI: 10.1038/s41598-021-03054-9.


Cell fate determination and Hippo signaling pathway in preimplantation mouse embryo.

Yildirim E, Bora G, Onel T, Talas N, Yaba A Cell Tissue Res. 2021; 386(3):423-444.

PMID: 34586506 DOI: 10.1007/s00441-021-03530-8.


References
1.
Buehr M, Meek S, Blair K, Yang J, Ure J, Silva J . Capture of authentic embryonic stem cells from rat blastocysts. Cell. 2008; 135(7):1287-98. DOI: 10.1016/j.cell.2008.12.007. View

2.
Fassler R, Pfaff M, Murphy J, Noegel A, Johansson S, Timpl R . Lack of beta 1 integrin gene in embryonic stem cells affects morphology, adhesion, and migration but not integration into the inner cell mass of blastocysts. J Cell Biol. 1995; 128(5):979-88. PMC: 2120384. DOI: 10.1083/jcb.128.5.979. View

3.
Fujikura J, Yamato E, Yonemura S, Hosoda K, Masui S, Nakao K . Differentiation of embryonic stem cells is induced by GATA factors. Genes Dev. 2002; 16(7):784-9. PMC: 186328. DOI: 10.1101/gad.968802. View

4.
Martinez Arias A, Nichols J, Schroter C . A molecular basis for developmental plasticity in early mammalian embryos. Development. 2013; 140(17):3499-510. DOI: 10.1242/dev.091959. View

5.
Shimosato D, Shiki M, Niwa H . Extra-embryonic endoderm cells derived from ES cells induced by GATA factors acquire the character of XEN cells. BMC Dev Biol. 2007; 7:80. PMC: 1933422. DOI: 10.1186/1471-213X-7-80. View