GSK3β/shaggy mediates patterning along the animal-vegetal axis of the sea urchin embryo
Open Access
- 1 July 1998
- journal article
- Published by The Company of Biologists in Development
- Vol. 125 (13) , 2489-2498
- https://doi.org/10.1242/dev.125.13.2489
Abstract
In the sea urchin embryo, the animal-vegetal axis is defined before fertilization and different embryonic territories are established along this axis by mechanisms which are largely unknown. Significantly, the boundaries of these territories can be shifted by treatment with various reagents including zinc and lithium. We have isolated and characterized a sea urchin homolog of GSK3β/shaggy, a lithium-sensitive kinase which is a component of the Wnt pathway and known to be involved in axial patterning in other embryos including Xenopus. The effects of overexpressing the normal and mutant forms of GSK3β derived either from sea urchin or Xenopus were analyzed by observation of the morphology of 48 hour embryos (pluteus stage) and by monitoring spatial expression of the hatching enzyme (HE) gene, a very early gene whose expression is restricted to an animal domain with a sharp border roughly coinciding with the future ectoderm / endoderm boundary. Inactive forms of GSK3β predicted to have a dominant-negative activity, vegetalized the embryo and decreased the size of the HE expression domain, apparently by shifting the boundary towards the animal pole. These effects are similar to, but even stronger than, those of lithium. Conversely, overexpression of wild-type GSK3β animalized the embryo and caused the HE domain to enlarge towards the vegetal pole. Unlike zinc treatment, GSK3β overexpression thus appeared to provoke a true animalization, through extension of the presumptive ectoderm territory. These results indicate that in sea urchin embryos the level of GSKβ activity controls the position of the boundary between the presumptive ectoderm and endoderm territories and thus, the relative extent of these tissue layers in late embryos. GSK3β and probably other downstream components of the Wnt pathway thus mediate patterning both along the primary AV axis of the sea urchin embryo and along the dorsal-ventral axis in Xenopus, suggesting a conserved basis for axial patterning between invertebrate and vertebrate in deuterostomes.Keywords
This publication has 51 references indexed in Scilit:
- Organization of the Proximal Promoter of the Hatching‐Enzyme Gene, the Earliest Zygotic Gene Expressed in the Sea Urchin EmbryoEuropean Journal of Biochemistry, 1997
- Induction of the primary dorsalizing center in Xenopus by the Wnt/GSK/β-catenin signaling pathway, but not by Vg1, Activin or NogginDevelopment, 1997
- Functional interaction of β-catenin with the transcription factor LEF-1Nature, 1996
- Role of glycogen synthase kinase 3 beta as a negative regulator of dorsoventral axis formation in Xenopus embryos.Proceedings of the National Academy of Sciences, 1995
- Structure of the sea urchin hatching enzyme geneEuropean Journal of Biochemistry, 1994
- Interactions between Xwnt-8 and Spemann organizer signaling pathways generate dorsoventral pattern in the embryonic mesoderm of Xenopus.Genes & Development, 1993
- Xwnt-8, a Xenopus Wnt-1/int-1-related gene responsive to mesoderminducing growth factors, may play a role in ventral mesodermal patterning during embryogenesisDevelopment, 1991
- Appendix G: In Situ Hybridization: An Improved Whole-Mount Method for Xenopus EmbryosPublished by Elsevier ,1991
- Neural and developmental actions of lithium: A unifying hypothesisCell, 1989
- The single-copy DNA sequence polymorphism of the sea urchin strongylocentrotus purpuratusCell, 1978