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Updated: Jul 11, 2026

Affinity Labeling Detection of Endogenous Receptors from Zebrafish Embryos
Published on: August 31, 2016
Distinct requirements for Gab1 in Met and EGF receptor signaling in vivo
Ute Schaeper1, Regina Vogel, Jolanta Chmielowiec
1Max Delbrueck Center for Molecular Medicine, Robert-Roessle-Strasse 10, 13125 Berlin, Germany.
Abstract:
Gab1 is a multiadaptor protein that has been shown to be required for multiple processes in embryonic development and oncogenic transformation. Gab1 functions by amplifying signal transduction downstream of various receptor tyrosine kinases through recruitment of multiple signaling effectors, including phosphatidylinositol 3-kinase and Shp2. Until now, the functional significance of individual interactions in vivo was not known. Here we have generated knockin mice that carry point mutations in either the P13K or Shp2 binding sites of Gab1. We show that different effector interactions with Gab1 play distinct biological roles downstream of Gab1 during the development of different organs. Recruitment of phosphatidylinositol 3-kinase by Gab1 is essential for EGF receptor-mediated embryonic eyelid closure and keratinocyte migration, and the Gab1-Shp2 interaction is crucial for Met receptor-directed placental development and muscle progenitor cell migration to the limbs. Furthermore, we investigate the dual association of Gab1 with the Met receptor. By analyzing knockin mice with mutations in the Grb2 or Met binding site of Gab1, we show that the requirements for Gab1 recruitment to Met varies in different biological contexts. Either the direct or the indirect interaction of Gab1 with Met is sufficient for Met-dependent muscle precursor cell migration, whereas both modes of interaction are required and neither is sufficient for placenta development, liver growth, and palatal shelf closure. These data demonstrate that Gab1 induces different biological responses through the recruitment of distinct effectors and that different modes of recruitment for Gab1 are required in different organs.
Insights
Growth factor receptor signaling adaptor Gab1 (Gab1) plays distinct roles in embryonic development by interacting with different downstream effectors. These interactions are crucial for organ development and cell migration processes.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cell Signaling
Background:
- Gab1 is a multi-adaptor protein essential for embryonic development and oncogenic transformation.
- Gab1 amplifies signaling from receptor tyrosine kinases by recruiting effectors like phosphatidylinositol 3-kinase (PI3K) and Shp2.
- The in vivo functional significance of individual Gab1 interactions was previously unknown.
Purpose of the Study:
- To investigate the distinct biological roles of individual Gab1 effector interactions in vivo.
- To elucidate the functional significance of Gab1's dual association with the Met receptor.
- To determine how different modes of Gab1 recruitment to Met impact various developmental processes.
Main Methods:
- Generation of Gab1 knockin mice with point mutations in PI3K or Shp2 binding sites.
- Analysis of knockin mice with mutations in Grb2 or Met binding sites of Gab1.
- Phenotypic analysis of these mouse models to assess developmental outcomes.
Main Results:
- Gab1-PI3K interaction is vital for EGF receptor-mediated eyelid closure and keratinocyte migration.
- Gab1-Shp2 interaction is crucial for Met receptor-driven placental development and limb muscle progenitor cell migration.
- Distinct requirements for Gab1 recruitment to Met were observed, with varying sufficiency of direct/indirect interactions for different organs.
Conclusions:
- Different Gab1 effector interactions mediate distinct biological responses during organ development.
- The mode of Gab1 recruitment to the Met receptor is context-dependent and varies across different organs.
- Gab1's functional versatility is achieved through differential recruitment of effectors and varied interaction modes with receptors.
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