TY - JOUR
T1 - Embryo model completes gastrulation to neurulation and organogenesis
AU - Amadei, Gianluca
AU - Handford, Charlotte E
AU - Qiu, Chengxiang
AU - De Jonghe, Joachim
AU - Greenfeld, Hannah
AU - Tran, Martin
AU - Martin, Beth K
AU - Chen, Dong-Yuan
AU - Aguilera-Castrejon, Alejandro
AU - Hanna, Jacob H
AU - Elowitz, Michael
AU - Hollfelder, Florian
AU - Shendure, Jay
AU - Glover, David M
AU - Zernicka-Goetz, Magdalena
N1 - Funding Information: We thank all members of the M.Z.-G. laboratory for their suggestions throughout this project, and M. Shahbazi and R. Hadas for help and discussions. This project has been made possible through the following grants to M.Z.-G.: NIH Pioneer Award (DP1 HD104575-01), European Research Council (669198), the Wellcome Trust (207415/Z/17/Z), Open Philanthropy/Silicon Valley Community Foundation and Weston Havens Foundation and the Centre for Trophoblast Research. F.H. was supported by the ERC (69566) and the Wellcome Trust (WT108438/C/15/Z). J.D.J. was supported by the Biotechnology and Biological Sciences Research Council. C.E.H. was supported by the Centre for Trophoblast Research, and the Leventis Foundation. A grant from the Paul G. Allen Frontiers Group (Allen Discovery Centre for Cell Lineage Tracing) supported M.Z.-G., M.B.E. and J.S. J.S. is also supported by the National Human Genome Research Institute (1UM1HG011586 to J.S.; R01HG010632 to J.S.) and is an Investigator of the Howard Hughes Medical Institute. M.B.E. is also an Investigator of the Howard Hughes Medical Institute and is supported by an NIH grant (R01 MH116508). H.G. is supported by a Biology and Biological Engineering postdoctoral fellowship from Caltech. D.-Y.C. is supported by a NIH-NRSA postdoctoral fellowship (5F32HD105442). Publisher Copyright: © 2022, The Author(s).
PY - 2022/10/6
Y1 - 2022/10/6
N2 - Embryonic stem (ES) cells can undergo many aspects of mammalian embryogenesis in vitro 1–5, but their developmental potential is substantially extended by interactions with extraembryonic stem cells, including trophoblast stem (TS) cells, extraembryonic endoderm stem (XEN) cells and inducible XEN (iXEN) cells 6–11. Here we assembled stem cell-derived embryos in vitro from mouse ES cells, TS cells and iXEN cells and showed that they recapitulate the development of whole natural mouse embryo in utero up to day 8.5 post-fertilization. Our embryo model displays headfolds with defined forebrain and midbrain regions and develops a beating heart-like structure, a trunk comprising a neural tube and somites, a tail bud containing neuromesodermal progenitors, a gut tube, and primordial germ cells. This complete embryo model develops within an extraembryonic yolk sac that initiates blood island development. Notably, we demonstrate that the neurulating embryo model assembled from Pax6-knockout ES cells aggregated with wild-type TS cells and iXEN cells recapitulates the ventral domain expansion of the neural tube that occurs in natural, ubiquitous Pax6-knockout embryos. Thus, these complete embryoids are a powerful in vitro model for dissecting the roles of diverse cell lineages and genes in development. Our results demonstrate the self-organization ability of ES cells and two types of extraembryonic stem cells to reconstitute mammalian development through and beyond gastrulation to neurulation and early organogenesis.
AB - Embryonic stem (ES) cells can undergo many aspects of mammalian embryogenesis in vitro 1–5, but their developmental potential is substantially extended by interactions with extraembryonic stem cells, including trophoblast stem (TS) cells, extraembryonic endoderm stem (XEN) cells and inducible XEN (iXEN) cells 6–11. Here we assembled stem cell-derived embryos in vitro from mouse ES cells, TS cells and iXEN cells and showed that they recapitulate the development of whole natural mouse embryo in utero up to day 8.5 post-fertilization. Our embryo model displays headfolds with defined forebrain and midbrain regions and develops a beating heart-like structure, a trunk comprising a neural tube and somites, a tail bud containing neuromesodermal progenitors, a gut tube, and primordial germ cells. This complete embryo model develops within an extraembryonic yolk sac that initiates blood island development. Notably, we demonstrate that the neurulating embryo model assembled from Pax6-knockout ES cells aggregated with wild-type TS cells and iXEN cells recapitulates the ventral domain expansion of the neural tube that occurs in natural, ubiquitous Pax6-knockout embryos. Thus, these complete embryoids are a powerful in vitro model for dissecting the roles of diverse cell lineages and genes in development. Our results demonstrate the self-organization ability of ES cells and two types of extraembryonic stem cells to reconstitute mammalian development through and beyond gastrulation to neurulation and early organogenesis.
UR - https://www.scopus.com/pages/publications/85138768193
U2 - 10.1038/s41586-022-05246-3
DO - 10.1038/s41586-022-05246-3
M3 - Article
SN - 0028-0836
VL - 610
SP - 143
EP - 153
JO - Nature
JF - Nature
IS - 7930
ER -