Sprouty proteins regulate ureteric branching by coordinating reciprocal epithelial Wnt11, mesenchymal Gdnf and

Lijun Chi1, Shaobing Zhang, Yanfeng Lin

  • 1Biocenter Oulu and Department of Biochemistry, Faculties of Science and Medicine, University of Oulu, PO Box 3000, FIN-90014 Oulu, Finland.

Development (Cambridge, England)
|June 18, 2004
PubMed

Insights

Sprouty proteins regulate kidney development by coordinating signaling pathways essential for ureteric branching. Disrupting Sprouty 2 (SPRY2) function leads to kidney failure and organ malformations.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Kidney development involves complex inductive tissue interactions and epithelial branching.
  • Sprouty proteins are known antagonists of receptor tyrosine kinases (EGF, FGF) and are implicated in signaling pathways.
  • The precise role of Sprouty proteins in kidney organogenesis remains poorly understood.

Purpose of the Study:

  • To investigate the in vivo function of Sprouty proteins in kidney development.
  • To elucidate the role of Sprouty 2 (SPRY2) in regulating ureteric branching and epithelial-mesenchymal signaling.

Main Methods:

  • Targeted expression of human SPRY2 in the mouse ureteric bud.
  • Analysis of kidney morphology and gene expression in genetically modified mice.
  • In vitro experiments to study the interaction between Fgf7, Gdnf, and Spry2.

Main Results:

  • Ectopic SPRY2 expression caused kidney failure, including agenesis, lobularization, and reduced organ size due to inhibited ureteric branching.
  • Dysmorphology was linked to deregulated Wnt11, Gdnf, and Fgf7 gene expression, highlighting Sprouty's role in coordinating signaling.
  • Fgf7 and Gdnf partially rescued SPRY2-mediated defects and induced supernumerary epithelial buds from the Wolffian duct.

Conclusions:

  • Spry genes are crucial for coordinating reciprocal epithelial-mesenchymal and stromal signaling during kidney development.
  • Sprouty proteins play a key role in regulating ureteric branching by integrating Fgf, Wnt11, and Gdnf pathways.

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