Essential function of PTP-PEST during mouse embryonic vascularization, mesenchyme formation, neurogenesis and early

Jacinthe Sirois1, Jean-François Côté, Alain Charest

  • 1McGill Cancer Center and Biochemistry Department, McGill University, 3655 Sir William Osler Promenade, Montreal, QUE, Canada H3G 1Y6.

Mechanisms of Development
|October 31, 2006
PubMed

Insights

Ablation of the protein-tyrosine phosphatase-PEST (PTP-PEST) gene causes early embryonic lethality. PTP-PEST deficiency leads to developmental defects including impaired cell-matrix interactions and abnormal organogenesis.

Area of Science:

  • Developmental Biology
  • Cell Signaling
  • Molecular Genetics

Background:

  • Protein-tyrosine phosphatase-PEST (PTP-PEST) regulates integrin signaling and cell-matrix interactions.
  • PTP-PEST binds key signaling molecules downstream of the focal adhesion kinase (FAK) pathway.
  • Its association with p130cas is critical for cell-matrix adhesion during embryogenesis.

Purpose of the Study:

  • To investigate the role of PTP-PEST in early embryonic development.
  • To determine the consequences of PTP-PEST gene ablation on embryonic growth and organogenesis.

Main Methods:

  • Gene ablation in mice to create PTP-PEST null mutants.
  • Analysis of embryonic development, morphology, and protein phosphorylation.
  • Examination of specific developmental events like gastrulation, organogenesis, and tissue differentiation.

Main Results:

  • PTP-PEST knockout leads to early embryonic lethality, correlating with high PTP-PEST expression during development.
  • Increased tyrosine phosphorylation of p130cas observed in PTP-PEST(-/-) embryos.
  • Null mutant embryos exhibit developmental failures including defective embryo turning, somitogenesis, vasculogenesis, and liver development, alongside neuroepithelial and somatic epithelial degeneration.

Conclusions:

  • PTP-PEST is essential for early embryogenesis, regulating critical developmental processes.
  • Defects in cell-matrix interactions, mesenchyme formation, and organogenesis due to PTP-PEST deficiency result in embryonic lethality.
  • The study provides biochemical evidence of PTP-PEST's role in embryonic development through p130cas regulation.

Related Concept Videos

Development of Blood Vessels01:07

Development of Blood Vessels

The development of the vascular system in a fetus is a complex and intricate process that begins as early as 15 to 16 days post-conception. This process starts outside the embryo, specifically in the mesoderm of the yolk sac, chorion, and connecting stalk. Approximately two days later, the formation of blood vessels occurs within the embryo itself.
The initial formation of this system is facilitated by the small amount of yolk present in the ovum and yolk sac. Blood vessels originate from...
Regulation of Angiogenesis and Blood Supply01:24

Regulation of Angiogenesis and Blood Supply

Rapidly dividing tumors, embryos, and wounded tissues require more oxygen than usual, lowering the oxygen concentration in the blood. At low oxygen or hypoxic conditions, an oxygen-sensitive transcription factor called the hypoxia-inducible factor 1 or HIF1 is activated. HIF1 is a dimeric protein of alpha (ɑ) and beta (β) subunits.  Under optimal oxygen conditions, HIF1β is present in the nucleus while HIF1ɑ remains in the cytosol. HIF1ɑ is hydroxylated by prolyl hydroxylase and factor...
Mechanism of Angiogenesis01:10

Mechanism of Angiogenesis

Blood vessel formation starts early during embryonic development, around day 7. In the extraembryonic yolk sac, mesodermal precursor cells called hemangioblast proliferate and differentiate into angioblast. Angioblasts express vascular endothelial growth factor receptor 2 or VEGFR2, which binds VEGF-A, a proangiogenic factor, guiding blood vessel formation. VEGF signaling promotes angioblasts to form a blood island in the developing embryo. Angioblasts further differentiate, giving rise to...
Gastrulation01:56

Gastrulation

Gastrulation establishes the three primary tissues of an embryo: the ectoderm, mesoderm, and endoderm. This developmental process relies on a series of intricate cellular movements, which in humans transforms a flat, “bilaminar disc” composed of two cell sheets into a three-tiered structure. In the resulting embryo, the endoderm serves as the bottom layer, and stacked directly above it is the intermediate mesoderm, and then the uppermost ectoderm. Respectively, these tissue strata will form...