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Published on: December 2, 2014
Zebrafish eaf1 and eaf2/u19 mediate effective convergence and extension movements through the maintenance of wnt11
Jing-Xia Liu1, Bo Hu1, Yang Wang2
1From the Key Laboratory of Biodiversity and Conservation of Aquatic Organisms, Wuhan 430072, China.
Abstract:
Studies have attributed several functions to the Eaf family, including tumor suppression and eye development. Given the potential association between cancer and development, we set forth to explore Eaf1 and Eaf2/U19 activity in vertebrate embryogenesis, using zebrafish. In situ hybridization revealed similar eaf1 and eaf2/u19 expression patterns. Morpholino-mediated knockdown of either eaf1 or eaf2/u19 expression produced similar morphological changes that could be reversed by ectopic expression of target or reciprocal-target mRNA. However, combination of Eaf1 and Eaf2/U19 (Eafs)-morpholinos increased the severity of defects, suggesting that Eaf1 and Eaf2/U19 only share some functional redundancy. The Eafs knockdown phenotype resembled that of embryos with defects in convergence and extension movements. Indeed, knockdown caused expression pattern changes for convergence and extension movement markers, whereas cell tracing experiments using kaeda mRNA showed a correlation between Eafs knockdown and cell migration defects. Cardiac and pancreatic differentiation markers revealed that Eafs knockdown also disrupted midline convergence of heart and pancreatic organ precursors. Noncanonical Wnt signaling plays a key role in both convergence and extension movements and midline convergence of organ precursors. We found that Eaf1 and Eaf2/U19 maintained expression levels of wnt11 and wnt5. Moreover, wnt11 or wnt5 mRNA partially rescued the convergence and extension movement defects occurring in eafs morphants. Wnt11 and Wnt5 converge on rhoA, so not surprisingly, rhoA mRNA more effectively rescued defects than either wnt11 or wnt5 mRNA alone. However, the ectopic expression of wnt11 and wnt5 did not affect eaf1 and eaf2/u19 expression. These data indicate that eaf1 and eaf2/u19 act upstream of noncanonical Wnt signaling to mediate convergence and extension movements.
Insights
The Eaf1 and Eaf2/U19 proteins are crucial for embryonic development in zebrafish, regulating cell migration and organ formation by acting upstream of noncanonical Wnt signaling pathways.
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- The Eaf family, including Eaf1 and Eaf2/U19, has known roles in tumor suppression and eye development.
- Understanding the role of Eaf proteins in embryogenesis is important due to the link between cancer and developmental processes.
Purpose of the Study:
- To investigate the activity and function of Eaf1 and Eaf2/U19 during vertebrate embryogenesis using zebrafish.
- To elucidate the molecular mechanisms by which Eaf proteins influence embryonic development, particularly cell migration and organogenesis.
Main Methods:
- In situ hybridization to analyze eaf1 and eaf2/u19 expression patterns in zebrafish embryos.
- Morpholino-mediated knockdown of eaf1 and eaf2/u19 to assess their functional roles.
- Ectopic mRNA expression for rescue experiments and cell tracing using kaeda mRNA.
- Analysis of gene expression markers for convergence and extension movements, cardiac, and pancreatic differentiation.
Main Results:
- Eaf1 and Eaf2/U19 exhibit similar expression patterns and knockdown of either gene caused comparable developmental defects.
- Combined knockdown of Eaf1 and Eaf2/U19 exacerbated defects, indicating partial functional redundancy.
- Eaf knockdown disrupted convergence and extension movements, cell migration, and midline convergence of cardiac and pancreatic precursors.
- Eaf1 and Eaf2/U19 maintain wnt11 and wnt5 expression, and wnt11/wnt5 partially rescued Eaf knockdown phenotypes.
Conclusions:
- Eaf1 and Eaf2/U19 are essential for zebrafish embryogenesis, playing critical roles in cell migration and organ precursor convergence.
- These Eaf proteins function upstream of noncanonical Wnt signaling (Wnt11/Wnt5) to regulate convergence and extension movements.
- The findings highlight the conserved role of Eaf proteins in developmental processes and their connection to Wnt signaling pathways.

