Origin and formation of the first two distinct cell types of the inner cell mass in the mouse embryo
- 22 March 2010
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 107 (14) , 6364-6369
- https://doi.org/10.1073/pnas.0915063107
Abstract
A crucial question in mammalian development is how cells of the early embryo differentiate into distinct cell types. The first decision is taken when cells undertake waves of asymmetric division that generate one daughter on the inside and one on the outside of the embryo. After this division, some cells on the inside remain pluripotent and give rise to the epiblast, and hence the future body, whereas others develop into the primitive endoderm, an extraembryonic tissue. How the fate of these inside cells is decided is unknown: Is the process random, or is it related to their developmental origins? To address this question, we traced all cells by live-cell imaging in intact, unmanipulated embryos until the epiblast and primitive endoderm became distinct. This analysis revealed that inner cell mass (ICM) cells have unrestricted developmental potential. However, cells internalized by the first wave of asymmetric divisions are biased toward forming pluripotent epiblast, whereas cells internalized in the next two waves of divisions are strongly biased toward forming primitive endoderm. Moreover, we show that cells internalized by the second wave up-regulate expression of Gata6 and Sox17, and changing the expression of these genes determines whether the cells become primitive endoderm. Finally, with our ability to determine the origin of cells, we find that inside cells that are mispositioned when they are born can sort into the correct layer. In conclusion, we propose a model in which the timing of cell internalization, cell position, and cell sorting combine to determine distinct lineages of the preimplantation mouse embryo.Keywords
This publication has 27 references indexed in Scilit:
- Sox17 promotes differentiation in mouse embryonic stem cells by directly regulating extraembryonic gene expression and indirectly antagonizing self-renewalGenes & Development, 2010
- Active cell movements coupled to positional induction are involved in lineage segregation in the mouse blastocystDevelopmental Biology, 2009
- Role of Cdx2 and cell polarity in cell allocation and specification of trophectoderm and inner cell mass in the mouse embryoGenes & Development, 2008
- The Endoderm of the Mouse Embryo Arises by Dynamic Widespread Intercalation of Embryonic and Extraembryonic LineagesDevelopmental Cell, 2008
- Distinct sequential cell behaviours direct primitive endoderm formation in the mouse blastocystDevelopment, 2008
- Formation of the embryonic-abembryonic axis of the mouse blastocyst:relationships between orientation of early cleavage divisions and pattern of symmetric/asymmetric divisionsDevelopment, 2008
- Regionalisation of the mouse visceral endoderm as the blastocyst transforms into the egg cylinderBMC Developmental Biology, 2007
- Blastocyst Axis Is Specified Independently of Early Cell Lineage But Aligns with the ZP ShapeScience, 2007
- In vivo imaging and differential localization of lipid‐modified GFP‐variant fusions in embryonic stem cells and miceGenesis, 2006
- Origin of the inner cell mass in mouse embryos: Cell lineage analysis by microinjectionDevelopmental Biology, 1986