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Towards an understanding of kidney diseases associated with WT1 mutations
Lihua Dong1, Stefan Pietsch1, Christoph Englert1,2
1Molecular Genetics, Leibniz Institute for Age Research, Fritz Lipmann Institute, Jena, Germany.
Abstract:
Mutations in Wilms' tumor 1 (WT1) cause a wide spectrum of renal manifestations, eventually leading to end-stage kidney failure. Insufficient understanding of WT1's molecular functions in kidney development has hampered efficient therapeutic applications for WT1-associated diseases. Recently, the generation and characterization of mouse models and application of multiple state-of-the-art approaches have significantly expanded our understanding of the molecular mechanisms of how WT1 mutations lead to kidney failure. Here, we discuss the WT1 binding consensus and illustrate the major roles of WT1 in different cell populations in kidney biology. WT1 controls metanephric mesenchyme (MM) self-renewal and proliferation mainly by regulating FGF and BMP-pSMAD signaling pathways as well as Sall1 and Pax2, encoding key transcription factors; WT1 drives MM differentiation and mesenchyme-epithelial transition by targeting Fgf8 and Wnt4; WT1 defines podocyte identity by activation of other podocyte-specific transcription factors, including Mafb, Lmx1b, FoxC2, and Tcf21. These factors potentially cooperate with WT1 regulating the expression of components and regulators of the cytoskeleton for establishing podocyte polarity, slit diaphragm structure, and focal adhesion to the glomerular basement membrane. Understanding of WT1's function in kidney biology including WT1-regulated pathways will give insights that will eventually help therapeutic applications.
Insights
Mutations in the Wilms tumor 1 (WT1) gene cause kidney failure by disrupting kidney development. Understanding WT1
Area of Science:
- Nephrology
- Developmental Biology
- Molecular Genetics
Background:
- Wilms tumor 1 (WT1) mutations are linked to diverse kidney diseases and end-stage renal failure.
- Limited knowledge of WT1's role in kidney development hinders effective treatments for WT1-associated diseases.
Purpose of the Study:
- To elucidate the molecular functions of WT1 in kidney development and disease.
- To discuss WT1's binding consensus and its roles in specific kidney cell populations.
Main Methods:
- Review of recent studies utilizing mouse models.
- Application of advanced molecular and genetic approaches.
- Analysis of WT1 binding consensus and regulatory pathways.
Main Results:
- WT1 regulates metanephric mesenchyme (MM) self-renewal and proliferation via FGF and BMP-pSMAD signaling, Sall1, and Pax2.
- WT1 promotes MM differentiation and mesenchyme-epithelial transition by targeting Fgf8 and Wnt4.
- WT1 is crucial for podocyte identity, activating transcription factors like Mafb, Lmx1b, FoxC2, and Tcf21.
Conclusions:
- WT1 plays critical roles in regulating gene expression networks essential for kidney development.
- Understanding WT1's functions and regulated pathways offers potential therapeutic strategies for kidney diseases.
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