Conditional expression of Spry1 in neural crest causes craniofacial and cardiac defects

Xuehui Yang1, Sean Kilgallen, Viktoria Andreeva

  • 1Center for Molecular Medicine, Maine Medical Center Research Institute, Scarborough, ME 04074, USA.

Abstract

Insights

Sprouty 1 (Spry1) is crucial for neural crest development. Conditional Spry1 expression in mice caused craniofacial and cardiac defects, indicating its role in morphogenesis and potential links to congenital disorders.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Growth factors and receptors are essential for organogenesis, requiring precise spatiotemporal regulation.
  • Intracellular regulators, like the Sprouty family, modulate growth factor signaling pathways.
  • Sprouty homolog 1 (Spry1) negatively regulates receptor tyrosine kinase pathways in development.

Purpose of the Study:

  • To investigate the role of Spry1 in neural crest development.
  • To analyze the effects of conditional Spry1 expression in neural crest-derived tissues.

Main Methods:

  • Conditional expression of Spry1 in neural crest cells using Spry1;Wnt1-Cre transgenic mice.
  • Analysis of craniofacial, cardiac, and neural development.
  • Assessment of cell proliferation and apoptosis.
  • Examination of key transcription factor expression domains.

Main Results:

  • Conditional Spry1 expression led to perinatal lethality in Spry1;Wnt1-Cre embryos.
  • Observed defects included facial clefting, cleft palate, cardiac anomalies, and cranial nerve issues.
  • Decreased proliferation and increased apoptosis were noted in neural crest populations.
  • Reduced expression domains of transcription factors AP2, Msx2, Dlx5, and Dlx6 were detected.

Conclusions:

  • Spry1 is a significant regulator of craniofacial and cardiac morphogenesis.
  • Aberrant Spry1 levels may contribute to congenital disorders affecting neural crest-derived tissues.

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