Interactions of Wnt-1 and Wnt-3a are essential for neural tube patterning

K A Augustine1, E T Liu, T W Sadler

  • 1Department of Cell Biology and Anatomy, University of North Carolina at Chapel Hill 27599, USA.

Teratology
|February 1, 1995
PubMed

Insights

Wnt-1 and Wnt-3a exhibit functional redundancy in spinal cord development. Inhibiting both Wnt-1 and Wnt-3a disrupts neural tube patterning and engrailed gene expression during embryonic development.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Wnt-1 and Wnt-3a share structural and expression similarities, suggesting functional overlap in spinal cord development.
  • Understanding the roles of Wnt signaling is crucial for comprehending embryonic morphogenesis.

Purpose of the Study:

  • To investigate the functional redundancy of Wnt-1 and Wnt-3a during mouse spinal cord development.
  • To examine the impact of Wnt-1 and Wnt-3a inhibition on neural tube patterning and engrailed gene expression.

Main Methods:

  • Utilized antisense oligonucleotides to inhibit Wnt-1 and Wnt-3a expression in a murine whole embryo culture system.
  • Analyzed early somite mouse embryos cultured in vitro for up to 48 hours post-injection.
  • Assessed neural tube morphology, cell adhesion, notochord, primitive streak, and engrailed protein levels.

Main Results:

  • Simultaneous inhibition of Wnt-1 and Wnt-3a led to neural tube abnormalities, including wavy morphology and reduced nuclear layers.
  • Decreased cell adhesion in the neuroepithelium and abnormalities in notochord and primitive streak were observed.
  • Inhibition of Wnt-1 or Wnt-3a reduced engrailed protein levels, with combined inhibition causing a more complete loss.

Conclusions:

  • Wnt-1 and Wnt-3a display functional redundancy in regulating neural tube patterning.
  • These Wnt proteins are essential for proper engrailed gene expression in the developing brain, somites, and spinal cord.

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