Related Experiment Video
Updated: Jul 4, 2026

In Vivo Modeling of the Morbid Human Genome using Danio rerio
Published on: August 24, 2013
Comparative phosphoproteomics of zebrafish Fyn/Yes morpholino knockdown embryos
Simone Lemeer1, Chris Jopling, Joost Gouw
1Hubrecht Institute-Royal Netherlands Academy of Arts and Sciences, University Medical Center Utrecht, Uppsalalaan 8, 3584 CT Utrecht, the Netherlands.
Abstract:
The coordinated movement of cells is indispensable for normal vertebrate gastrulation. Several important players and signaling pathways have been identified in convergence and extension (CE) cell movements during gastrulation, including non-canonical Wnt signaling. Fyn and Yes, members of the Src family of kinases, are key regulators of CE movements as well. Here we investigated signaling pathways in early development by comparison of the phosphoproteome of wild type zebrafish embryos with Fyn/Yes knockdown embryos that display specific CE cell movement defects. For quantitation we used differential stable isotope labeling by reductive amination of peptides. Equal amounts of labeled peptides from wild type and Fyn/Yes knockdown embryos were mixed and analyzed by on-line reversed phase TiO(2)-reversed phase LC-MS/MS. Phosphorylated and non-phosphorylated peptides were quantified, and significant changes in protein expression and/or phosphorylation were detected. We identified 348 phosphoproteins of which 69 showed a decrease in phosphorylation in Fyn/Yes knockdown embryos and 72 showed an increase in phosphorylation. Among these phosphoproteins were known regulators of cell movements, including Adducin and PDLIM5. Our results indicate that quantitative phosphoproteomics combined with morpholino-mediated knockdowns can be used to identify novel signaling pathways that act in zebrafish development in vivo.
Insights
Investigating cell movement in zebrafish gastrulation, this study compared phosphoproteomes of wild-type and Fyn/Yes knockdown embryos. This revealed significant changes in protein phosphorylation, identifying key regulators of cell migration during development.
Area of Science:
- Developmental Biology
- Cell Biology
- Biochemistry
Background:
- Coordinated cell movement is crucial for vertebrate gastrulation.
- Non-canonical Wnt signaling and Src family kinases (Fyn and Yes) regulate convergence and extension (CE) cell movements.
Purpose of the Study:
- To investigate signaling pathways in early zebrafish development.
- To compare the phosphoproteome of wild-type embryos with Fyn/Yes knockdown embryos exhibiting CE cell movement defects.
Main Methods:
- Differential stable isotope labeling by reductive amination of peptides for quantitative phosphoproteomics.
- On-line reversed-phase TiO(2)-reversed-phase LC-MS/MS analysis.
- Morpholino-mediated knockdown in zebrafish embryos.
Main Results:
- Identified 348 phosphoproteins in zebrafish embryos.
- Observed significant changes in phosphorylation: 69 decreased and 72 increased in Fyn/Yes knockdown embryos.
- Detected known cell movement regulators like Adducin and PDLIM5 among the affected phosphoproteins.
Conclusions:
- Quantitative phosphoproteomics combined with morpholino knockdowns is effective for identifying novel signaling pathways in zebrafish development.
- Fyn and Yes kinases play a significant role in regulating the phosphoproteome during gastrulation.
- This approach can uncover new molecular players in cell migration and developmental processes.
