Gene dosage-dependent functions for phosphotyrosine-Grb2 signaling during mammalian tissue morphogenesis

T M Saxton1, A M Cheng, S H Ong

  • 1Programme in Molecular Biology and Cancer, Samuel Lunenfeld Research Institute, Mount Sinai Hospital, Ontario, M5G 1X5, Toronto, Canada.

Abstract

Insights

The Grb2 adaptor protein is essential for mammalian development, regulating tissue formation and cell survival. Creating a series of Grb2 mutations revealed its critical roles in placental development and neural crest cell migration.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Cell Signaling

Background:

  • Grb2 adaptor protein links receptor tyrosine kinases to downstream pathways like Ras-MAP kinase.
  • Grb2 is crucial for endoderm differentiation, as shown by null allele studies.

Purpose of the Study:

  • To investigate the diverse embryonic and postnatal functions of Grb2.
  • To create and characterize a hypomorphic Grb2 mutation in mice.

Main Methods:

  • Engineered a hypomorphic Grb2 mutation (E89K) in mice, reducing SH2 domain phosphotyrosine binding.
  • Generated compound heterozygous (null and hypomorphic) and homozygous hypomorphic Grb2 mutant mice.
  • Analyzed Grb2 mutant fibroblasts for ERK/MAP kinase activation and Gab1 tyrosine phosphorylation.

Main Results:

  • Compound heterozygous embryos showed placental defects and neural crest cell survival issues.
  • Homozygous hypomorphic mice exhibited perinatal lethality due to cleft palate.
  • Grb2 mutant fibroblasts displayed impaired ERK/MAP kinase activation and Gab1 phosphorylation.

Conclusions:

  • An allelic series of mouse Grb2 revealed distinct roles in tissue morphogenesis and cell viability.
  • Grb2 is vital for placental development and neural crest cell survival.
  • Findings support Grb2's essential role in RTK signaling to Ras-MAP kinase and Gab1 pathways.

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