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Updated: Nov 5, 2025

A Phenotyping Regimen for Genetically Modified Mice Used to Study Genes Implicated in Human Diseases of Aging
Published on: July 14, 2016
Characterization of a Trpc6 Transgenic Mouse Associated with Early Onset FSGS
Cesar P Canales1,2, Paola Krall3, Pamela Kairath4
1John P. Hussman Institute for Human Genomics, University of Miami Leonard Miller School of Medicine, Miami, Florida, USA.
Rationale:
Mutations in Transient Receptor Potential Channel 6 (TRPC6) gene are associated with autosomal dominant focal and segmental glomerulosclerosis (FSGS). The majority of the identified mutations affect the ion channel function. Since calcium channels are promising candidate drug targets, there is an an urgent need for a mouse model to assess new therapeutic drugs and to help delineate the pathogenic process leading to FSGS. We have previously reported the generation of three independent transgenic mouse lines carrying different Trpc6 mutations that display a glomerular disease comparable to the phenotype presented by individuals with FSGS. However, the utility of these models for drug testing is dampened by the late-onset of the presentation and the mild phenotypic manifestations.
Methodology:
In order to obtain a time-effective mouse model for Trpc6-associated FSGS we generated a new transgenic mutant Trpc6 mouse model emulating the amino acid change carried by the first pediatric patient of FSGS associated with a TRPC6 mutation: M132T.
Results:
Mice carrying the orthologous Trpc6 M131T transgene showed early onset proteinuria and early signs of FSGS. When exploring molecular consequences of the overexpression of this mutated form of Trpc6 in podocytes, differences in expression levels of Axin2 and β-catenin were found in glomeruli from transgenic Trpc6 M131T mice. These data supports the proposed molecular mechanisms related to the activation of calcineurin-NFAT/Wnt signaling, as outcome of the increased calcium influx caused by the mutated form of Trpc6.
Conclusion:
Given that the Trpc6 M131T mouse develops an early onset of FSGS-like phenotypes it represents a promising model for studying the pathogenesis of FSGS caused by TRpC6, facilitating the assessment of new drugs as treatments and allowing further studies to understand underlying molecular pathways involved in the development of the TRPC6 mediated disease.
Insights
A new mouse model with a mutated Transient Receptor Potential Channel 6 (TRPC6) gene exhibits early-onset focal and segmental glomerulosclerosis (FSGS). This model aids in studying TRPC6-associated FSGS and testing new therapeutic drugs.
Area of Science:
- Nephrology
- Genetics
- Molecular Biology
Background:
- Mutations in the Transient Receptor Potential Channel 6 (TRPC6) gene are linked to autosomal dominant focal and segmental glomerulosclerosis (FSGS).
- Existing TRPC6 mouse models for FSGS have late onset and mild phenotypes, limiting their utility for drug testing.
- Calcium channels are potential therapeutic targets for FSGS, necessitating effective preclinical models.
Purpose of the Study:
- To develop a time-effective mouse model for studying TRPC6-associated FSGS.
- To emulate the M132T mutation found in a pediatric FSGS patient.
- To facilitate drug assessment and understand FSGS pathogenesis.
Main Methods:
- Generation of a novel transgenic mutant TRPC6 mouse model.
- Emulation of the specific M132T amino acid change associated with human FSGS.
- Analysis of phenotypic presentation and molecular consequences in the generated mice.
Main Results:
- The Trpc6 M131T mutant mice displayed early-onset proteinuria and FSGS.
- Overexpression of mutated TRPC6 in podocytes led to altered Axin2 and beta-catenin expression.
- Findings support a mechanism involving calcineurin-NFAT/Wnt signaling activation due to increased calcium influx.
Conclusions:
- The Trpc6 M131T mouse model exhibits early-onset FSGS-like phenotypes.
- This model is promising for studying TRPC6-mediated FSGS pathogenesis.
- It will aid in evaluating new therapeutic drugs and understanding disease pathways.

