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Isolation and Culture of Cells from the Nephrogenic Zone of the Embryonic Mouse Kidney
Published on: April 22, 2011
A novel pathological role of p53 in kidney development revealed by gene-environment interactions
Hao Fan1, Jessica R Harrell, Susana Dipp
1Department of Pediatrics, Tulane University Health Sciences Center, 1430 Tulane Ave., New Orleans, LA 70112, USA.
Abstract:
Gene-environment interactions are implicated in congenital human disorders. Accordingly, there is a pressing need to develop animal models of human disease, which are the product of defined gene-environment interactions. Previously, our laboratory demonstrated that gestational salt stress of bradykinin B(2) receptor (B(2)R)-null mice induces renal dysgenesis and early death of the offspring. In contrast, salt-stressed B(2)R +/+ or +/- littermates have normal development. The present study investigates the mechanisms underlying the susceptibility of B(2)R-null mice to renal dysgenesis. Proteomic and conventional Western blot screens identified E-cadherin among the differentially repressed proteins in B(2)R-/- kidneys, whereas the checkpoint kinase Chk1 and its substrate P-Ser(20) p53 were induced. We tested the hypothesis that p53 mediates repression of E-cadherin gene expression and is causally linked to the renal dysgenesis. Genetic crosses between B(2)R -/- and p53+/- mice revealed that germline reduction of p53 gene dosage rescues B(2)R-/- mice from renal dysgenesis and restores kidney E-cadherin gene expression. Furthermore, gamma-irradiation induces repression of E-cadherin gene expression in p53+/+ but not -/- cells. In transient transfection assays, p53 repressed human E-cadherin promoter-driven reporter activity, whereas a mutant p53, which cannot bind DNA, did not. Functional promoter analysis indicated the presence of a p53-responsive element in exon 1, which partially mediates p53-induced repression. Chromatin immunoprecipitation assays revealed that p53 inhibits histone acetylation of the E-cadherin promoter. Treatment with a histone deacetylase inhibitor reversed both p53-mediated promoter repression and deacetylation. In conclusion, this study demonstrates that gene-environment interactions cooperate to induce congenital defects through p53 activation.
Insights
Gene-environment interactions cause congenital disorders. This study shows p53 activation by salt stress in bradykinin B(2) receptor-null mice represses E-cadherin, leading to kidney defects.
Area of Science:
- Developmental biology
- Molecular genetics
- Toxicology
Background:
- Congenital human disorders often result from gene-environment interactions.
- Animal models are crucial for studying these complex interactions.
- Previous work showed salt stress causes renal dysgenesis in bradykinin B(2) receptor (B(2)R)-null mice.
Purpose of the Study:
- Investigate the molecular mechanisms of renal dysgenesis in B(2)R-null mice under salt stress.
- Determine the role of p53 and E-cadherin in this process.
Main Methods:
- Proteomic and Western blot analyses to identify differentially expressed proteins.
- Genetic crosses between B(2)R-/- and p53+/- mice.
- Cellular assays including transient transfection, promoter analysis, and chromatin immunoprecipitation.
Main Results:
- B(2)R-/- kidneys showed repressed E-cadherin and induced p53.
- Reducing p53 gene dosage rescued B(2)R-/- mice from renal dysgenesis and restored E-cadherin.
- p53 directly repressed E-cadherin gene expression by inhibiting promoter histone acetylation.
Conclusions:
- Gene-environment interactions, specifically salt stress in B(2)R-null mice, induce congenital defects via p53 activation.
- p53 plays a critical role in repressing E-cadherin expression, contributing to renal dysgenesis.
- This study elucidates a novel molecular pathway linking environmental stress to developmental abnormalities.
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