Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
Dev Dyn
2011 Jun 01;2406:1502-11. doi: 10.1002/dvdy.22607.
Show Gene links
Show Anatomy links
Evidence for partial epithelial-to-mesenchymal transition (pEMT) and recruitment of motile blastoderm edge cells during avian epiboly.
Futterman MA
,
García AJ
,
Zamir EA
.
???displayArticle.abstract???
Embryonic epiboly has become an important developmental model for studying the mechanisms underlying collective movements of epithelial cells. In the last couple of decades, most studies of epiboly have utilized Xenopus or zebrafish as genetically tractable model organisms, while the avian epiboly model has received virtually no attention. Here, we re-visit epiboly in quail embryos and characterize several molecular markers of epithelial-to-mesenchymal transition (EMT) in the inner zone of the extraembryonic Area Opaca and at the blastoderm edge. Our results show that the intermediate filament vimentin, a widely-used marker for the mesenchymal phenotype, is strongly expressed in the edge cells compared to the cells in the inner zone. Laminin, an extracellular matrix protein that is a major structural and adhesive component of the epiblast basement membrane and the inner zone of the Area Opaca, is notably absent from the blastoderm edge. While these expression profiles are consistent with a mesenchymal phenotype, several other epithelial markers, including cytokeratin, β-catenin, and E-cadherin, are present in the blastoderm edge cells. Moreover, the results of a BrDU proliferation assay strongly suggest that expansion of the edge cell population is primarily due to recruitment of cells from the inner zone, as opposed to proliferation. Taken together, our data show that the edge cells of the avian blastoderm have characteristics of both epithelial and mesenchymal cells, and that the avian epiboly model, which has been dormant for so many years, may yet again prove to be helpful as a unique developmental model for studying partial EMT in the context of collective epithelial cell migration.
Arnoux,
Erk5 controls Slug expression and keratinocyte activation during wound healing.
2008, Pubmed
Arnoux,
Erk5 controls Slug expression and keratinocyte activation during wound healing.
2008,
Pubmed
Bargagna-Mohan,
The tumor inhibitor and antiangiogenic agent withaferin A targets the intermediate filament protein vimentin.
2007,
Pubmed
Baum,
Transitions between epithelial and mesenchymal states in development and disease.
2008,
Pubmed
Bellairs,
The influence of the area opaca on the development of the young chick embryo.
1967,
Pubmed
Cano,
The transcription factor snail controls epithelial-mesenchymal transitions by repressing E-cadherin expression.
2000,
Pubmed
Cerdà,
Zebrafish vimentin: molecular characterization, assembly properties and developmental expression.
1998,
Pubmed
Chaffer,
Mesenchymal-to-epithelial transition facilitates bladder cancer metastasis: role of fibroblast growth factor receptor-2.
2006,
Pubmed
Chapman,
Improved method for chick whole-embryo culture using a filter paper carrier.
2001,
Pubmed
Chen,
Mechanotransduction at cell-matrix and cell-cell contacts.
2004,
Pubmed
Chernoff,
Adhesion and fusion of the extraembryonic epiblast.
1989,
Pubmed
Christiansen,
Reassessing epithelial to mesenchymal transition as a prerequisite for carcinoma invasion and metastasis.
2006,
Pubmed
Davidson,
Mesendoderm extension and mantle closure in Xenopus laevis gastrulation: combined roles for integrin alpha(5)beta(1), fibronectin, and tissue geometry.
2002,
Pubmed
,
Xenbase
DePianto,
Intermediate filaments and tissue repair.
2004,
Pubmed
Downie,
Organization of the chick blastoderm edge.
1971,
Pubmed
Downie,
The mechanism of chick blastoderm expansion.
1976,
Pubmed
du Roure,
Force mapping in epithelial cell migration.
2005,
Pubmed
Erickson,
Changes in the distribution of intermediate-filament types in Japanese quail embryos during morphogenesis.
1987,
Pubmed
Farooqui,
Multiple rows of cells behind an epithelial wound edge extend cryptic lamellipodia to collectively drive cell-sheet movement.
2005,
Pubmed
Ghysen,
Development of the zebrafish lateral line.
2004,
Pubmed
Gilles,
Vimentin contributes to human mammary epithelial cell migration.
1999,
Pubmed
Green,
Are desmosomes more than tethers for intermediate filaments?
2000,
Pubmed
HAMBURGER,
A series of normal stages in the development of the chick embryo.
1951,
Pubmed
Hay,
The mesenchymal cell, its role in the embryo, and the remarkable signaling mechanisms that create it.
2005,
Pubmed
Herman,
Developmentally regulated and spatially restricted antigens of radial glial cells.
1993,
Pubmed
Huber,
The cadherin cytoplasmic domain is unstructured in the absence of beta-catenin. A possible mechanism for regulating cadherin turnover.
2001,
Pubmed
Isaacs,
Assembly of vimentin in cultured cells varies with cell type.
1989,
Pubmed
Jacinto,
Mechanisms of epithelial fusion and repair.
2001,
Pubmed
Jacinto,
Dynamic analysis of actin cable function during Drosophila dorsal closure.
2002,
Pubmed
Jou,
Genetic and biochemical dissection of protein linkages in the cadherin-catenin complex.
1995,
Pubmed
Keller,
How we are shaped: the biomechanics of gastrulation.
2003,
Pubmed
,
Xenbase
Kiehart,
Multiple forces contribute to cell sheet morphogenesis for dorsal closure in Drosophila.
2000,
Pubmed
Klymkowsky,
Polar asymmetry in the organization of the cortical cytokeratin system of Xenopus laevis oocytes and embryos.
1987,
Pubmed
,
Xenbase
Klymkowsky,
Vimentin and keratin intermediate filament systems in cultured PtK2 epithelial cells are interrelated.
1982,
Pubmed
Klymkowsky,
Evidence that the deep keratin filament systems of the Xenopus embryo act to ensure normal gastrulation.
1992,
Pubmed
,
Xenbase
Klymkowsky,
Epithelial-mesenchymal transition: a cancer researcher's conceptual friend and foe.
2009,
Pubmed
,
Xenbase
Lee,
The epithelial-mesenchymal transition: new insights in signaling, development, and disease.
2006,
Pubmed
Leroy,
Slug is required for cell survival during partial epithelial-mesenchymal transition of HGF-induced tubulogenesis.
2007,
Pubmed
Madlener,
Regulation of the expression of stromelysin-2 by growth factors in keratinocytes: implications for normal and impaired wound healing.
1996,
Pubmed
Magin,
Structural and regulatory functions of keratins.
2007,
Pubmed
Miner,
Laminin functions in tissue morphogenesis.
2004,
Pubmed
Miner,
Compositional and structural requirements for laminin and basement membranes during mouse embryo implantation and gastrulation.
2004,
Pubmed
Mücke,
Molecular and biophysical characterization of assembly-starter units of human vimentin.
2004,
Pubmed
NEW,
The adhesive properties and expansion of the chick blastoderm.
1959,
Pubmed
Omelchenko,
Rho-dependent formation of epithelial "leader" cells during wound healing.
2003,
Pubmed
Page,
Changing patterns of cytokeratins and vimentin in the early chick embryo.
1989,
Pubmed
Parry,
Towards a molecular description of intermediate filament structure and assembly.
2007,
Pubmed
Polette,
Beta-catenin and ZO-1: shuttle molecules involved in tumor invasion-associated epithelial-mesenchymal transition processes.
2007,
Pubmed
Poujade,
Collective migration of an epithelial monolayer in response to a model wound.
2007,
Pubmed
Rechardt,
Stromelysin-2 is upregulated during normal wound repair and is induced by cytokines.
2000,
Pubmed
Revenu,
EMT 2.0: shaping epithelia through collective migration.
2009,
Pubmed
Roeser,
Nuclear beta-catenin and the development of bilateral symmetry in normal and LiCl-exposed chick embryos.
1999,
Pubmed
,
Xenbase
Rørth,
Collective cell migration.
2009,
Pubmed
Salmela,
Collagenase-1 (MMP-1), matrilysin-1 (MMP-7), and stromelysin-2 (MMP-10) are expressed by migrating enterocytes during intestinal wound healing.
2004,
Pubmed
Sato,
Dynamic analysis of vascular morphogenesis using transgenic quail embryos.
2010,
Pubmed
Schopferer,
Desmin and vimentin intermediate filament networks: their viscoelastic properties investigated by mechanical rheometry.
2009,
Pubmed
Smyth,
The targeted deletion of the LAMC1 gene.
1998,
Pubmed
Viebahn,
Keratin and vimentin expression in early organogenesis of the rabbit embryo.
1988,
Pubmed
Weliky,
The mechanical basis of cell rearrangement. I. Epithelial morphogenesis during Fundulus epiboly.
1990,
Pubmed
Zamir,
The ECM moves during primitive streak formation--computation of ECM versus cellular motion.
2008,
Pubmed