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1.
Nat Commun ; 14(1): 4022, 2023 07 07.
Article in English | MEDLINE | ID: mdl-37419903

ABSTRACT

Biomechanical cues are instrumental in guiding embryonic development and cell differentiation. Understanding how these physical stimuli translate into transcriptional programs will provide insight into mechanisms underlying mammalian pre-implantation development. Here, we explore this type of regulation by exerting microenvironmental control over mouse embryonic stem cells. Microfluidic encapsulation of mouse embryonic stem cells in agarose microgels stabilizes the naive pluripotency network and specifically induces expression of Plakoglobin (Jup), a vertebrate homolog of ß-catenin. Overexpression of Plakoglobin is sufficient to fully re-establish the naive pluripotency gene regulatory network under metastable pluripotency conditions, as confirmed by single-cell transcriptome profiling. Finally, we find that, in the epiblast, Plakoglobin was exclusively expressed at the blastocyst stage in human and mouse embryos - further strengthening the link between Plakoglobin and naive pluripotency in vivo. Our work reveals Plakoglobin as a mechanosensitive regulator of naive pluripotency and provides a paradigm to interrogate the effects of volumetric confinement on cell-fate transitions.


Subject(s)
Embryonic Development , Germ Layers , Animals , Mice , Humans , gamma Catenin/genetics , gamma Catenin/metabolism , Cell Differentiation/genetics , Germ Layers/metabolism , Embryonic Development/genetics , Gene Expression Profiling , Blastocyst/metabolism , Mammals/genetics
3.
Cell ; 185(5): 777-793.e20, 2022 03 03.
Article in English | MEDLINE | ID: mdl-35196500

ABSTRACT

In development, lineage segregation is coordinated in time and space. An important example is the mammalian inner cell mass, in which the primitive endoderm (PrE, founder of the yolk sac) physically segregates from the epiblast (EPI, founder of the fetus). While the molecular requirements have been well studied, the physical mechanisms determining spatial segregation between EPI and PrE remain elusive. Here, we investigate the mechanical basis of EPI and PrE sorting. We find that rather than the differences in static cell surface mechanical parameters as in classical sorting models, it is the differences in surface fluctuations that robustly ensure physical lineage sorting. These differential surface fluctuations systematically correlate with differential cellular fluidity, which we propose together constitute a non-equilibrium sorting mechanism for EPI and PrE lineages. By combining experiments and modeling, we identify cell surface dynamics as a key factor orchestrating the correct spatial segregation of the founder embryonic lineages.


Subject(s)
Blastocyst , Embryo, Mammalian , Endoderm , Animals , Blastocyst/metabolism , Cell Differentiation/physiology , Cell Lineage/physiology , Cell Membrane/metabolism , Embryo, Mammalian/metabolism , Embryonic Development , Endoderm/metabolism , Mammals , Mice , Protein Transport
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