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Published on: January 26, 2013
Expression cloning of Xenopus Os4, an evolutionarily conserved gene, which induces mesoderm and dorsal axis
1Laboratory of Molecular Embryology, The Rockefeller University, 1230 York Avenue, New York, New York 10021-6399, USA.
Abstract:
Multiple factors, including members of the FGF, TGF beta, and Wnt family of proteins, are important mediators in the regulation of dorsal-ventral pattern formation during vertebrate development. By using an expression cloning approach to identify novel factors that could regulate dorsal-ventral patterning in the Xenopus embryo, we isolated the Xenopus homologue of the human Os4 gene by virtue of its ability to induce a secondary dorsal axis. While Os4 homologues have been identified in a variety of species, and human Os4 is overexpressed in human tumors, the biological function of Os4 is unknown. To explore the mechanism by which Xenopus Os4 (XOs4) induces a secondary dorsal axis, we used Xenopus explant and whole-embryo assays. The secondary axis induced by XOs4 is distinct from that induced by activation of Wnt or FGF pathways but similar to that induced by inhibition of BMP signaling or activation of an Activin pathway. However, XOs4 did not inhibit BMP signaling in dissociated animal cap explants, indicating that XOs4 does not inhibit BMP signaling. Similar to activation of an Activin-like pathway, expression of XOs4 induces molecular markers for mesoderm in animal cap explants, although expression of gastrula-stage mesodermal markers was very weak and substantially delayed. Yet, XOs4 does not require activity of the Activin signal-transduction pathway for mesoderm induction as dominant-negative components of the Activin/Nodal/Vg1 pathway did not prevent XOs4-mediated induction of mesodermal derivatives. Finally, like Activin/Nodal/Vg1 pathways, XOs4 requires FGF signaling for expression of mesoderm markers. Results presented in this study demonstrate that XOs4 can induce mesoderm and dorsalize ventral mesoderm resulting in ectopic dorsal axis formation, suggesting a role for this large evolutionarily conserved gene family in early development.
Insights
Xenopus Os4 (XOs4) induces a secondary dorsal axis by promoting mesoderm formation, distinct from Wnt or FGF pathways. This conserved gene family plays a role in early vertebrate development.
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- Dorsal-ventral patterning in vertebrate embryos is regulated by signaling pathways including FGF, TGF beta, and Wnt.
- The biological function of the Os4 gene family remains largely unknown, despite its identification across species and overexpression in human tumors.
Purpose of the Study:
- To identify novel factors regulating dorsal-ventral patterning in Xenopus embryos.
- To elucidate the mechanism by which Xenopus Os4 (XOs4) induces a secondary dorsal axis.
Main Methods:
- Expression cloning to identify novel patterning factors.
- Xenopus explant and whole-embryo assays to study XOs4 function.
- Analysis of downstream molecular markers and signaling pathway interactions.
Main Results:
- XOs4 was isolated for its ability to induce a secondary dorsal axis in Xenopus embryos.
- XOs4 induces mesoderm and dorsalizes ventral mesoderm, but does not inhibit BMP signaling.
- XOs4-induced mesoderm formation requires FGF signaling and is independent of the Activin/Nodal/Vg1 pathway.
Conclusions:
- Xenopus Os4 (XOs4) plays a significant role in early embryonic development by inducing mesoderm and dorsal axis formation.
- The mechanism involves FGF signaling and is distinct from direct BMP inhibition or Activin pathway activation.
- Os4 represents a conserved gene family with potential implications in developmental processes.

