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Activation of NFAT signaling in podocytes causes glomerulosclerosis
Yinqiu Wang1, George Jarad, Piyush Tripathi
1Renal Division, Department of Internal Medicine, Washington University School of Medicine, St. Louis, MO 63110, USA.
Abstract:
Mutant forms of TRPC6 can activate NFAT-dependent transcription in vitro via calcium influx and activation of calcineurin. The same TRPC6 mutants can cause FSGS, but whether this involves an NFAT-dependent mechanism is unknown. Here, we generated mice that allow conditional induction of NFATc1. Mice with NFAT activation in nascent podocytes in utero developed proteinuria and glomerulosclerosis postnatally, resembling FSGS. NFAT activation in adult mice also caused progressive proteinuria and FSGS. Ultrastructural studies revealed podocyte foot process effacement and deposition of extracellular matrix. NFAT activation did not initially affect expression of podocin, synaptopodin, and nephrin but reduced their expression as glomerular injury progressed. In contrast, we observed upregulation of Wnt6 and Fzd9 in the mutant glomeruli before the onset of significant proteinuria, suggesting a potential role for Wnt signaling in the pathogenesis of NFAT-induced podocyte injury and FSGS. These results provide in vivo evidence for the involvement of NFAT signaling in podocytes, proteinuria, and glomerulosclerosis. Furthermore, this study suggests that NFAT activation may be a key intermediate step in the pathogenesis of mutant TRPC6-mediated FSGS and that suppression of NFAT activity may contribute to the antiproteinuric effects of calcineurin inhibitors.
Insights
Activating Nuclear Factor of Activated T-cells (NFAT) signaling in podocytes causes proteinuria and glomerulosclerosis in mice, mimicking Focal Segmental Glomerulosclerosis (FSGS). This suggests NFAT activation is crucial in FSGS development and may be targeted for treatment.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Mutant TRPC6 channels activate NFAT-dependent transcription in vitro.
- Mutant TRPC6 is linked to Focal Segmental Glomerulosclerosis (FSGS), but the in vivo mechanism involving NFAT is unclear.
Purpose of the Study:
- To investigate the role of NFAT signaling in podocytes in the development of proteinuria and glomerulosclerosis.
- To determine if NFAT activation in podocytes can induce FSGS in vivo.
Main Methods:
- Generated genetically modified mice with conditional NFATc1 induction in podocytes.
- Induced NFAT activation in developing and adult mice.
- Assessed kidney function, performed ultrastructural analysis, and analyzed gene expression.
Main Results:
- NFAT activation in nascent or adult podocytes led to progressive proteinuria and glomerulosclerosis.
- Ultrastructural changes included podocyte foot process effacement and extracellular matrix deposition.
- NFAT activation altered expression of key podocyte markers and upregulated Wnt signaling components.
Conclusions:
- NFAT signaling in podocytes is sufficient to cause proteinuria and FSGS in vivo.
- NFAT activation is a potential key mediator in mutant TRPC6-associated FSGS.
- Targeting NFAT activity may offer therapeutic benefits for FSGS and reduce proteinuria.
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