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Mutations affecting the formation of the notochord in the zebrafish, Danio rerio
J Odenthal1, P Haffter, E Vogelsang
1MPI für Entwicklungsbiologie, Tübingen, Germany. od@gen.mpib-tuebingen.mpg.de
Abstract:
In a large scale screen for mutants with defects in the embryonic development of the zebrafish we identified mutations in four genes,floating head (flh), momo (mom), no tail (ntl), and doc, that are required for early notochord formation. Mutations in flh and ntl have been described previously, while mom and doc are newly identified genes. Mutant mom embryos lack a notochord in the trunk, and trunk somites from the right and left side of the embryo fuse underneath the neural tube. In this respect mom appears similar to flh. In contrast, notochord precursor cells are present in both ntl and doc embryos. In order to gain a greater understanding of the phenotypes, we have analysed the expression of several axial mesoderm markers in mutant embryos of all four genes. In flh and mom, Ntl expression is normal in the germ ring and tailbud, while the expression of Ntl and other notochord markers in the axial mesodermal region is disrupted. Ntl expression is normal in doc embryos until early somitic stages, when there is a reduction in expression which is first seen in anterior regions of the embryo. This suggests a function for doc in the maintenance of ntl expression. Other notochord markers such as twist, sonic hedgehog and axial are not expressed in the axial mesoderm of ntl embryos, their expression parallels the expression of ntl in the axial mesoderm of mutant doc, flh and mom embryos, indicating that ntl is required for the expression of these markers. The role of doc in the expression of the notochord markers appears indirect via ntl. Floor plate formation is disrupted in most regions in flh and mom mutant embryos but is present in mutant ntl and doc embryos. In mutant embryos with strong ntl alleles the band of cells expressing floor plate markers is broadened. A similar broadening is also observed in the axial mesoderm underlying the floor plate of ntl embryos, suggesting a direct involvement of the notochord precursor cells in floor plate induction. Mutations in all of these four genes result in embryos lacking a horizontal myoseptum and muscle pioneer cells, both of which are thought to be induced by the notochord. These somite defects can be traced back to an impairment of the specification of the adaxial cells during early stages of development. Transplantation of wild-type cells into mutant doc embryos reveals that wild-type notochord cells are sufficient to induce horizontal myoseptum formation in the flanking mutant tissue. Thus doc, like flh and ntl, acts cell autonomously in the notochord. In addition to the four mutants with defects in early notochord formation, we have isolated 84 mutants, defining at least 15 genes, with defects in later stages of notochord development. These are listed in an appendix to this study.
Insights
We identified four genes, floating head (flh), momo (mom), no tail (ntl), and doc, essential for zebrafish notochord development. Mutations disrupt notochord formation and subsequent embryonic patterning, highlighting their crucial roles.
Area of Science:
- Developmental Biology
- Genetics
- Zebrafish Embryogenesis
Background:
- The notochord is a crucial axial structure in vertebrate embryonic development.
- Understanding the genetic control of notochord formation is key to deciphering developmental processes.
Purpose of the Study:
- To identify and characterize genes involved in early notochord development in zebrafish.
- To elucidate the molecular mechanisms underlying notochord formation and its impact on embryonic patterning.
Main Methods:
- Large-scale forward genetic screen in zebrafish embryos.
- Analysis of gene expression patterns (Ntl, twist, sonic hedgehog, axial) in mutant embryos.
- Cell transplantation experiments to assess cell autonomy.
Main Results:
- Identified mutations in four genes (flh, mom, ntl, doc) affecting notochord formation.
- Discovered that ntl is required for the expression of other notochord markers.
- Demonstrated that doc acts cell-autonomously in notochord development and is crucial for notochord marker maintenance.
- Observed defects in floor plate formation and somite development in mutants, linked to impaired adaxial cell specification.
Conclusions:
- flh, mom, ntl, and doc are essential for zebrafish notochord development.
- ntl acts as a key regulator for downstream notochord markers.
- doc plays a cell-autonomous role in notochord development and maintenance.
- Proper notochord formation is critical for subsequent embryonic patterning events, including floor plate and somite development.