Click
here to close Hello! We notice that
you are using Internet Explorer, which is not supported by Echinobase
and may cause the site to display incorrectly. We suggest using a
current version of Chrome,
FireFox,
or Safari.
Rouxs Arch Dev Biol
1992 Oct 01;2016:383-388. doi: 10.1007/BF00365126.
Show Gene links
Show Anatomy links
The insertion of mesenchyme cells into the ectoderm during differentiation in Sea urchin embryos.
Spiegel E
,
Spiegel M
.
???displayArticle.abstract???
During the course of sea urchin development, from early blastula to pluteus larva, there are two major visible processes toward which all activities seem to be focused. They are the differentiation of the larval skeleton by the primary mesenchyme cells and the differentiation of the primitive gut by the secondary mesenchyme cells. These activities take place within the shell-like layer of epithelial cells, or ectodermal wall. The interactive role of the ectodermal wall with the mesenchyme cells is not yet clearly understood. A number of earlier studies have proposed that the ectoderm may have an inductive influence on the mesenchyme cells and that its inner surface forms a molecular template for guiding the mesenchyme cells. In this report, we suggest an additional role for the ectodermal wall. We show that some primary mesenchyme cells and secondary mesenchyme cells insert between the cells of the ectodermal wall in order to firmly anchor the anlage of the larval skeleton and primitive gut during differentiation. This mechanism may provide a physical basis for maintaining the stable positional relationship of the anlage during development.
Ettensohn,
Cell lineage conversion in the sea urchin embryo.
1988, Pubmed,
Echinobase
Ettensohn,
Cell lineage conversion in the sea urchin embryo.
1988,
Pubmed
,
Echinobase
Gibson,
The origin of pigment cells in embryos of the sea urchin Strongylocentrotus purpuratus.
1985,
Pubmed
,
Echinobase
Gustafson,
Cellular movement and contact in sea urchin morphogenesis.
1967,
Pubmed
,
Echinobase
GUSTAFSON,
CELLULAR MECHANISMS IN THE MORPHOGENESIS OF THE SEA URCHIN EMBRYO. CELL CONTACTS WITHIN THE ECTODERM AND BETWEEN MESENCHYME AND ECTODERM CELLS.
1963,
Pubmed
,
Echinobase
GUSTAFSON,
THE CELLULAR BASIS OF MORPHOGENESIS AND SEA URCHIN DEVELOPMENT.
1963,
Pubmed
,
Echinobase
GUSTAFSON,
Studies on the cellular basis of morphogenesis in the sea urchin embryo. Directed movements of primary mesenchvme cells in normal and vegetalized larvae.
1961,
Pubmed
,
Echinobase
Hardin,
Target recognition by the archenteron during sea urchin gastrulation.
1990,
Pubmed
,
Echinobase
Harkey,
Isolation, culture, and differentiation of echinoid primary mesenchyme cells.
1980,
Pubmed
,
Echinobase
Katow,
In situ distribution of concanavalin A-binding sites in mesenchyme blastulae and early gastrulae of the sea urchin Lytechinus pictus.
1982,
Pubmed
,
Echinobase
Solursh,
Initial characterization of sulfated macromolecules in the blastocoels of mesenchyme blastulae of Strongylocentrotus purpuratus and Lytechinus pictus.
1982,
Pubmed
,
Echinobase
Spiegel,
Cell adhesion during gastrulation. A new approach.
1982,
Pubmed
,
Echinobase
Spiegel,
Extracellular matrix of sea urchin and other marine invertebrate embryos.
1989,
Pubmed
,
Echinobase
Spiegel,
Fibronectin and laminin in the extracellular matrix and basement membrane of sea urchin embryos.
1983,
Pubmed
,
Echinobase
Spiegel,
Development of cell junctions in sea-urchin embryos.
1983,
Pubmed
,
Echinobase
WEISS,
The problem of specificity in growth and development.
1947,
Pubmed