The origin of skeleton forming cells in the sea urchin embryo
Susan Urben1, Corey Nislow2, Melvin Spiegel3
1University of California, 94134, San Francisco, CA, USA.
Abstract:
In embryos of the "modern" sea urchin species, subclass Euechinoidea, primary mesenchyme cells are derived from the progeny of micromeres formed at the sixteen cell stage of embryogenesis. The micromeres reside within the vegetal plate epithelium and later ingress into the blastocoel as primary mesenchyme cells which form the larval skeleton. Embryos of Eucidaris tribuloides, a member of the "primitive" subclass Perischoechinoidea, exhibit several noteworthy differences from euechinoid primary mesenchyme cell lineage including variable numbers and sizes of micromeres, the absence of mesenchyme ingression, and the lack of any detectable primary mesenchyme although a larval skeleton forms. In the present study, the cell lineage of the spiculogenic mesenchyme has been studied in Eucidaris tribuloides and in the euechinoid Lytechinus pictus by microinjecting the fluorescent tracer, Lucifer Yellow, into individual blastomeres of the embryo. In addition, wheat germ agglutinin, a lectin which binds only to primary mesenchyme cells of the early euechinoid embryo, was injected into the blastocoel of embryos of both species in order to examine the distribution of cells which possess primary mesenchyme-specific cell surface markers. The results of these experiments demonstrate that the spiculogenic mesenchyme of both Lytechinus and Eucidaris arise from descendants of micromeres formed at the sixteen cell stage, although the temporal and spatial distribution of these mesenchyme cells varies considerably between species. Furthermore, the evidence obtained suggests that the information necessary for spicule formation is already segregated to the vegetal pole by the eight cell stage. The results also suggest that there are no gap junctions present between the blastomeres of the early sea urchin embryo.
Insights
Sea urchin embryos show that spiculogenic mesenchyme cells originate from micromeres in both primitive and modern species. This cell lineage is established early, with key information segregated by the eight-cell stage.
Area of Science:
- Developmental biology
- Marine biology
- Evolutionary developmental biology
Background:
- Primary mesenchyme cells form the larval skeleton in "modern" sea urchins (Euechinoidea).
- Primitive sea urchins (Perischoechinoidea) show differences in micromere formation and mesenchyme development.
- Understanding conserved and divergent developmental pathways is key to evolutionary insights.
Purpose of the Study:
- To investigate the cell lineage of spiculogenic mesenchyme in a primitive sea urchin (Eucidaris tribuloides) and compare it to a modern species (Lytechinus pictus).
- To determine the origin and timing of mesenchyme cell specification in these divergent sea urchin lineages.
Main Methods:
- Microinjection of the fluorescent tracer Lucifer Yellow into individual blastomeres.
- Injection of wheat germ agglutinin (WGA) lectin to identify primary mesenchyme cell surface markers.
- Comparative analysis of cell lineage and cell distribution in Eucidaris tribuloides and Lytechinus pictus embryos.
Main Results:
- Spiculogenic mesenchyme in both Lytechinus and Eucidaris originates from micromere descendants at the sixteen-cell stage.
- Significant variations exist in the temporal and spatial distribution of these mesenchyme cells between the two species.
- Evidence suggests that developmental information for spicule formation is segregated to the vegetal pole by the eight-cell stage.
- No gap junctions were detected between early sea urchin blastomeres.
Conclusions:
- The fundamental lineage of spiculogenic mesenchyme from micromeres is conserved across major sea urchin subclasses.
- Divergence in mesenchyme cell distribution reflects evolutionary modifications in developmental timing and spatial organization.
- Early segregation of developmental potential at the vegetal pole is a conserved feature in sea urchin embryogenesis.
Related Concept Videos
Gastrulation
Bone Formation by Intramembranous Ossification
The process begins when mesenchymal cells in the embryonic skeleton gather together and differentiate into osteogenic cells, which then develop into ...
Bone Formation by Endochondral Ossification
Zygotic Development And Stem Cell Formation
Neurulation
Changes in the Appendicular Skeleton with Age
Initially, the limb buds consist of a core of mesenchyme covered by a layer of ectoderm. The ectoderm at the end of the limb bud thickens to form a narrow crest called the apical ectodermal ridge. This ridge stimulates the underlying...


