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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
2.
Life Sci Alliance ; 6(8)2023 08.
Article in English | MEDLINE | ID: mdl-37217306

ABSTRACT

Human germline-soma segregation occurs during weeks 2-3 in gastrulating embryos. Although direct studies are hindered, here, we investigate the dynamics of human primordial germ cell (PGCs) specification using in vitro models with temporally resolved single-cell transcriptomics and in-depth characterisation using in vivo datasets from human and nonhuman primates, including a 3D marmoset reference atlas. We elucidate the molecular signature for the transient gain of competence for germ cell fate during peri-implantation epiblast development. Furthermore, we show that both the PGCs and amnion arise from transcriptionally similar TFAP2A-positive progenitors at the posterior end of the embryo. Notably, genetic loss of function experiments shows that TFAP2A is crucial for initiating the PGC fate without detectably affecting the amnion and is subsequently replaced by TFAP2C as an essential component of the genetic network for PGC fate. Accordingly, amniotic cells continue to emerge from the progenitors in the posterior epiblast, but importantly, this is also a source of nascent PGCs.


Subject(s)
Embryo, Mammalian , Gene Regulatory Networks , Animals , Humans , Gene Regulatory Networks/genetics , Cell Differentiation/genetics , Germ Layers , Germ Cells
3.
Development ; 149(20)2022 10 15.
Article in English | MEDLINE | ID: mdl-36125063

ABSTRACT

The early specification and rapid growth of extraembryonic membranes are distinctive hallmarks of primate embryogenesis. These complex tasks are resolved through an intricate combination of signals controlling the induction of extraembryonic lineages and, at the same time, safeguarding the pluripotent epiblast. Here, we delineate the signals orchestrating primate epiblast and amnion identity. We encapsulated marmoset pluripotent stem cells into agarose microgels and identified culture conditions for the development of epiblast- and amnion-spheroids. Spatial identity mapping authenticated spheroids generated in vitro by comparison with marmoset embryos in vivo. We leveraged the microgel system to functionally interrogate the signalling environment of the post-implantation primate embryo. Single-cell profiling of the resulting spheroids demonstrated that activin/nodal signalling is required for embryonic lineage identity. BMP4 promoted amnion formation and maturation, which was counteracted by FGF signalling. Our combination of microgel culture, single-cell profiling and spatial identity mapping provides a powerful approach to decipher the essential cues for embryonic and extraembryonic lineage formation in primate embryogenesis.


Subject(s)
Microgels , Activins , Amnion , Animals , Callithrix , Cell Differentiation , Germ Layers , Sepharose
4.
Nature ; 609(7925): 136-143, 2022 09.
Article in English | MEDLINE | ID: mdl-35709828

ABSTRACT

Gastrulation controls the emergence of cellular diversity and axis patterning in the early embryo. In mammals, this transformation is orchestrated by dynamic signalling centres at the interface of embryonic and extraembryonic tissues1-3. Elucidating the molecular framework of axis formation in vivo is fundamental for our understanding of human development4-6 and to advance stem-cell-based regenerative approaches7. Here we illuminate early gastrulation of marmoset embryos in utero using spatial transcriptomics and stem-cell-based embryo models. Gaussian process regression-based 3D transcriptomes delineate the emergence of the anterior visceral endoderm, which is hallmarked by conserved (HHEX, LEFTY2, LHX1) and primate-specific (POSTN, SDC4, FZD5) factors. WNT signalling spatially coordinates the formation of the primitive streak in the embryonic disc and is counteracted by SFRP1 and SFRP2 to sustain pluripotency in the anterior domain. Amnion specification occurs at the boundaries of the embryonic disc through ID1, ID2 and ID3 in response to BMP signalling, providing a developmental rationale for amnion differentiation of primate pluripotent stem cells (PSCs). Spatial identity mapping demonstrates that primed marmoset PSCs exhibit the highest similarity to the anterior embryonic disc, whereas naive PSCs resemble the preimplantation epiblast. Our 3D transcriptome models reveal the molecular code of lineage specification in the primate embryo and provide an in vivo reference to decipher human development.


Subject(s)
Callithrix , Gastrulation , Uterus , Animals , Callithrix/embryology , Cell Differentiation , Embryo, Mammalian/cytology , Embryo, Mammalian/embryology , Endoderm/cytology , Endoderm/embryology , Female , Gene Expression Profiling , Germ Layers/cytology , Germ Layers/embryology , Humans , Pluripotent Stem Cells/cytology
5.
Stem Cell Reports ; 16(5): 1347-1362, 2021 05 11.
Article in English | MEDLINE | ID: mdl-33979603

ABSTRACT

Human periimplantation development requires the transformation of the naive pluripotent epiblast into a polarized epithelium. Lumenogenesis plays a critical role in this process, as the epiblast undergoes rosette formation and lumen expansion to form the amniotic cavity. Here, we present a high-throughput in vitro model for epiblast morphogenesis. We established a microfluidic workflow to encapsulate human pluripotent stem cells (hPSCs) into monodisperse agarose microgels. Strikingly, hPSCs self-organized into polarized epiblast spheroids that could be maintained in self-renewing and differentiating conditions. Encapsulated primed hPSCs required Rho-associated kinase inhibition, in contrast to naive hPSCs. We applied microgel suspension culture to examine the lumen-forming capacity of hPSCs and reveal an increase in lumenogenesis during the naive-to-primed transition. Finally, we demonstrate the feasibility of co-encapsulating cell types across different lineages and species. Our work provides a foundation for stem cell-based embryo models to interrogate the critical components of human epiblast self-organization and morphogenesis.


Subject(s)
Cell Culture Techniques , Induced Pluripotent Stem Cells/cytology , Microgels/chemistry , Morphogenesis , Sepharose/pharmacology , Cell Differentiation/drug effects , Cell Lineage/drug effects , Cell Survival/drug effects , Cells, Immobilized/cytology , Cells, Immobilized/drug effects , Germ Layers/cytology , Humans , Induced Pluripotent Stem Cells/drug effects , Induced Pluripotent Stem Cells/metabolism , Morphogenesis/drug effects , Protein Kinase Inhibitors/pharmacology , Spheroids, Cellular/cytology , Spheroids, Cellular/drug effects , rho-Associated Kinases/antagonists & inhibitors , rho-Associated Kinases/metabolism
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