Mesenchymal-epithelial transition regulates initiation of pluripotency exit before gastrulation

Author:

Hamidi Sofiane1,Nakaya Yukiko2,Nagai Hiroki12,Alev Cantas23,Kasukawa Takeya4,Chhabra Sapna5,Lee Ruda6,Niwa Hitoshi7,Warmflash Aryeh8,Shibata Tatsuo2,Sheng Guojun12ORCID

Affiliation:

1. International Research Center for Medical Sciences (IRCMS), Kumamoto University, Kumamoto 860-0811, Japan

2. Center for Biosystems Dynamics Research (BDR), RIKEN, Kobe 650-0047, Japan

3. Institute for the Advanced Study of Human Biology (ASHBi), Kyoto University, Kyoto 606-8507, Japan

4. Center for Integrative Medical Sciences, RIKEN, Yokohama 230-0045, Japan

5. Systems, Synthetic and Physical Biology Graduate Program, Rice University, Houston, TX 77251, USA

6. International Research Organization for Advanced Science and Technology (IROAST), Kumamoto University, Kumamoto 860-8555, Japan

7. Department of Pluripotent Stem Cell Biology, Institute of Molecular Embryology and Genetics, Kumamoto University, Kumamoto 860-0811, Japan

8. Department of Biosciences and Bioengineering, Rice University, Houston, TX 77005, USA

Abstract

ABSTRACT The pluripotent epiblast gives rise to all tissues and organs in the adult body. Its differentiation starts at gastrulation, when the epiblast generates mesoderm and endoderm germ layers through epithelial-mesenchymal transition (EMT). Although gastrulation EMT coincides with loss of epiblast pluripotency, pluripotent cells in development and in vitro can adopt either mesenchymal or epithelial morphology. The relationship between epiblast cellular morphology and its pluripotency is not well understood. Here, using chicken epiblast and mammalian pluripotency stem cell (PSC) models, we show that PSCs undergo a mesenchymal-epithelial transition (MET) prior to EMT-associated pluripotency loss. Epiblast MET and its subsequent EMT are two distinct processes. The former, a partial MET, is associated with reversible initiation of pluripotency exit, whereas the latter, a full EMT, is associated with complete and irreversible pluripotency loss. We provide evidence that integrin-mediated cell-matrix interaction is a key player in pluripotency exit regulation. We propose that epiblast partial MET is an evolutionarily conserved process among all amniotic vertebrates and that epiblast pluripotency is restricted to an intermediate cellular state residing between the fully mesenchymal and fully epithelial states.

Funder

RIKEN

Kumamoto University

Takeda Medical Research Foundation

Japan Society for the Promotion of Science

National Science Foundation

Simons Foundation

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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