Sprouty2 mediated tuning of signalling is essential for somite myogenesis

BMC Medical Genomics
|March 19, 2015
PubMed
Abstract

Insights

Sprouty2 (Spry2) regulates chick muscle development by fine-tuning FGF signaling. Its mis-expression inhibits myogenesis, while its C-terminal domain promotes cell proliferation, revealing its crucial role in somite myogenesis.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Cell Signaling

Background:

  • Sprouty2 (Spry2) is a negative regulator of receptor tyrosine kinases (RTK) and FGF signaling pathways.
  • Spry2 is essential for embryonic development, influencing differentiation, cell migration, and proliferation.
  • Spry2 expression is observed in vertebrate paraxial mesoderm and somites, persisting in the myotome during differentiation.

Purpose of the Study:

  • To investigate the role and mechanism of Sprouty2 (Spry2) during chick somite myogenesis.
  • To analyze the expression pattern of Spry2 in relation to myogenic regulatory factors.

Main Methods:

  • Analysis of chick Spry2 expression patterns.
  • Targeted mis-expression of Spry2 and its C-terminal domain in chick embryos.
  • Overexpression and dominant-negative interference studies.

Main Results:

  • Chick Spry2 expression overlaps with myogenic regulatory factors MyoD and Mgn in somite myotomes.
  • Mis-expression of Spry2 inhibits myogenesis.
  • The C-terminal domain of Spry2 stimulates cell proliferation, increasing myogenic cell numbers.

Conclusions:

  • Sprouty2 (Spry2) is crucial for regulating chick myogenesis.
  • Spry2 fine-tunes FGF signaling through a negative feedback loop.
  • MicroRNAs mir-23, mir-27, and mir-128 are proposed components of this negative feedback mechanism.

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