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Direct action of endothelin-1 on podocytes promotes diabetic glomerulosclerosis
Olivia Lenoir1, Marine Milon1, Anne Virsolvy2
1Paris Cardiovascular Research Centre, Institut National de la Santé et de la Recherche Médicale, Paris, France; Université Paris Descartes, Sorbonne Paris Cité, Paris, France;
Abstract:
The endothelin system has emerged as a novel target for the treatment of diabetic nephropathy. Endothelin-1 promotes mesangial cell proliferation and sclerosis. However, no direct pathogenic effect of endothelin-1 on podocytes has been shown in vivo and endothelin-1 signaling in podocytes has not been investigated. This study investigated endothelin effects in podocytes during experimental diabetic nephropathy. Stimulation of primary mouse podocytes with endothelin-1 elicited rapid calcium transients mediated by endothelin type A receptors (ETARs) and endothelin type B receptors (ETBRs). We then generated mice with a podocyte-specific double deletion of ETAR and ETBR (NPHS2-Cre×Ednra(lox/lox)×Ednrb(lox/lox) [Pod-ETRKO]). In vitro, treatment with endothelin-1 increased total β-catenin and phospho-NF-κB expression in wild-type glomeruli, but this effect was attenuated in Pod-ETRKO glomeruli. After streptozotocin injection to induce diabetes, wild-type mice developed mild diabetic nephropathy with microalbuminuria, mesangial matrix expansion, glomerular basement membrane thickening, and podocyte loss, whereas Pod-ETRKO mice presented less albuminuria and were completely protected from glomerulosclerosis and podocyte loss, even when uninephrectomized. Moreover, glomeruli from normal and diabetic Pod-ETRKO mice expressed substantially less total β-catenin and phospho-NF-κB compared with glomeruli from counterpart wild-type mice. This evidence suggests that endothelin-1 drives development of glomerulosclerosis and podocyte loss through direct activation of endothelin receptors and NF-κB and β-catenin pathways in podocytes. Notably, both the expression and function of the ETBR subtype were found to be important. Furthermore, these results indicate that activation of the endothelin-1 pathways selectively in podocytes mediates pathophysiologic crosstalk that influences mesangial architecture and sclerosis.
Insights
Endothelin-1 directly harms podocytes in diabetic nephropathy by activating specific receptors, leading to glomerulosclerosis and cell loss. Blocking these pathways protects against kidney damage.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- The endothelin system is implicated in diabetic nephropathy, but its direct role in podocyte injury is unclear.
- Endothelin-1 (ET-1) is known to promote mesangial cell proliferation and sclerosis.
Purpose of the Study:
- To investigate the direct effects of endothelin-1 signaling in podocytes during experimental diabetic nephropathy.
- To determine the role of endothelin type A receptors (ETAR) and endothelin type B receptors (ETBR) in podocyte injury.
Main Methods:
- Primary mouse podocytes were stimulated with ET-1 to assess calcium transients.
- Podocyte-specific double knockout mice for ETAR and ETBR (Pod-ETRKO) were generated.
- Diabetic nephropathy was induced in wild-type and Pod-ETRKO mice using streptozotocin.
Main Results:
- ET-1 stimulation caused calcium transients in wild-type podocytes via ETAR and ETBR.
- Pod-ETRKO mice showed significantly reduced albuminuria and were protected from glomerulosclerosis and podocyte loss compared to wild-type mice.
- Glomeruli from diabetic Pod-ETRKO mice exhibited lower levels of β-catenin and phospho-NF-κB compared to wild-type controls.
Conclusions:
- Endothelin-1 directly contributes to glomerulosclerosis and podocyte loss in diabetic nephropathy through ETAR and ETBR activation in podocytes.
- The NF-κB and β-catenin pathways are key mediators of ET-1-induced podocyte injury.
- Targeting ET-1 signaling specifically in podocytes offers a potential therapeutic strategy for diabetic nephropathy.
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