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Published on: December 14, 2015
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.
Abstract:
Wnt-1 and Wnt-3a have been postulated to share functional redundancy in spinal cord morphogenesis due to their homologies in protein structure and overlapping expression patterns. In this study, antisense oligonucleotides and a murine whole embryo culture system were used to examine functional interactions of Wnt-1 and Wnt-3a in late gastrulation and neurulation. Early somite mouse embryos were injected with combinations of Wnt-1 and Wnt-3a antisense oligonucleotides and then grown in vitro for up to 48 hr. Simultaneous inhibition of Wnt-1 and Wnt-3a expression resulted in pattern loss in the presumptive spinal cord, which was apparent within 4 hr following antisense treatment. The neural tube was wavy, there was a reduction in the number of nuclear layers in the walls of the neural tube, and evidence of decreased cell adhesion between neuroepithelial cells by 12 hr postinjection. In addition, notochord and primitive streak abnormalities accompanied neural tube abnormalities. The existence of regulatory interactions between Wnt-1, Wnt-3a, and engrailed genes was also examined in this study. Antisense inhibition of Wnt-1 or Wnt-3a expression resulted in reduction of engrailed protein levels in the brain, somites, and spinal cord. However, simultaneous inhibition of both Wnt genes resulted in more complete loss of engrailed protein in these regions. Herein, we present data suggesting functional redundancy of Wnt-1 and Wnt-3a in neural tube patterning and in regulation of engrailed expression.
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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