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EGF receptor deletion in podocytes attenuates diabetic nephropathy
Jianchun Chen1, Jian-Kang Chen2, Raymond C Harris3
1Department of Veterans Affairs, Nashville, Tennessee; Departments of Medicine and.
Abstract:
The generation of reactive oxygen species (ROS), particularly superoxide, by damaged or dysfunctional mitochondria has been postulated to be an initiating event in the development of diabetes complications. The glomerulus is a primary site of diabetic injury, and podocyte injury is a classic hallmark of diabetic glomerular lesions. In streptozotocin-induced type 1 diabetes, podocyte-specific EGF receptor (EGFR) knockout mice (EGFR(podKO)) and their wild-type (WT) littermates had similar levels of hyperglycemia and polyuria, but EGFR(podKO) mice had significantly less albuminuria and less podocyte loss compared with WT diabetic mice. Furthermore, EGFR(podKO) diabetic mice had less TGF-β1 expression, Smad2/3 phosphorylation, and glomerular fibronectin deposition. Immunoblotting of isolated glomerular lysates revealed that the upregulation of cleaved caspase 3 and downregulation of Bcl2 in WT diabetic mice were attenuated in EGFR(podKO) diabetic mice. Administration of the SOD mimetic mito-tempol or the NADPH oxidase inhibitor apocynin attenuated the upregulation of p-c-Src, p-EGFR, p-ERK1/2, p-Smad2/3, and TGF-β1 expression and prevented the alteration of cleaved caspase 3 and Bcl2 expression in glomeruli of WT diabetic mice. High-glucose treatment of cultured mouse podocytes induced similar alterations in the production of ROS; phosphorylation of c-Src, EGFR, and Smad2/3; and expression of TGF-β1, cleaved caspase 3, and Bcl2. These alterations were inhibited by treatment with mito-tempol or apocynin or by inhibiting EGFR expression or activity. Thus, results of our studies utilizing mice with podocyte-specific EGFR deletion demonstrate that EGFR activation has a major role in activating pathways that mediate podocyte injury and loss in diabetic nephropathy.
Insights
Epidermal Growth Factor Receptor (EGFR) activation drives podocyte injury and loss in diabetic nephropathy. Inhibiting EGFR protects against kidney damage in diabetes by reducing oxidative stress and inflammation.
Area of Science:
- Nephrology
- Diabetology
- Molecular Biology
Background:
- Mitochondrial reactive oxygen species (ROS) generation is implicated in diabetic complications.
- Podocyte injury is a key feature of diabetic glomerular lesions.
Purpose of the Study:
- To investigate the role of podocyte-specific Epidermal Growth Factor Receptor (EGFR) in diabetic nephropathy.
- To determine if inhibiting EGFR can mitigate podocyte injury in diabetes.
Main Methods:
- Utilized streptozotocin-induced type 1 diabetes mouse models with podocyte-specific EGFR knockout (EGFR(podKO)) and wild-type (WT) littermates.
- Administered antioxidants (mito-tempol) and NADPH oxidase inhibitors (apocynin) to WT diabetic mice.
- Treated cultured mouse podocytes with high glucose and tested interventions.
Main Results:
- EGFR(podKO) diabetic mice exhibited reduced albuminuria, podocyte loss, TGF-β1 expression, Smad2/3 phosphorylation, and fibronectin deposition compared to WT diabetic mice.
- Antioxidant and NADPH oxidase inhibition attenuated key injury markers (p-c-Src, p-EGFR, p-ERK1/2, p-Smad2/3, TGF-β1) and apoptosis markers (cleaved caspase 3, Bcl2) in WT diabetic mice.
- High glucose-induced podocyte injury in vitro was reversed by inhibiting ROS, NADPH oxidase, or EGFR.
Conclusions:
- Podocyte EGFR activation plays a critical role in mediating podocyte injury and loss in diabetic nephropathy.
- Targeting EGFR may represent a therapeutic strategy for preventing diabetic kidney disease.
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