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Updated: Aug 23, 2026

Isolation and Culture of Cells from the Nephrogenic Zone of the Embryonic Mouse Kidney
Published on: April 22, 2011
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.
Abstract:
The kidney is a classic model for studying mechanisms of inductive tissue interactions associated with the epithelial branching common to many embryonic organs, but the molecular mechanisms are still poorly known. Sprouty proteins antagonize tyrosine kinases in the Egf and Fgf receptors and are candidate components of inductive signalling in the kidney as well. We have addressed the function of sprouty proteins in vivo by targeted expression of human sprouty 2 (SPRY2) in the ureteric bud, which normally expresses inductive signals and mouse sprouty 2 (Spry2). Ectopic SPRY2 expression led to postnatal death resulting from kidney failure, manifested as unilateral agenesis, lobularization of the organ or reduction in organ size because of inhibition of ureteric branching. The experimentally induced dysmorphology associated with deregulated expression of Wnt11, Gdnf and Fgf7 genes in the early stages of organogenesis indicated a crucial role for sprouty function in coordination of epithelial-mesenchymal and stromal signalling, the sites of expression of these genes. Moreover, Fgf7 induced Spry2 gene expression in vitro and led with Gdnf to a partial rescue of the SPRY2-mediated defect in ureteric branching. Remarkably, it also led to supernumerary epithelial bud formation from the Wolffian duct. Together, these data suggest that Spry genes contribute to reciprocal epithelial-mesenchymal and stromal signalling controlling ureteric branching, which involves the coordination of Ffg/Wnt11/Gdnf pathways.
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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