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Plumbagin ameliorates diabetic nephropathy via interruption of pathways that include NOX4 signalling
Rachel Yong1, Xin-Ming Chen, Sylvie Shen
1Department of Medicine, Kolling Institute of Medical Research, Northern Clinical School, University of Sydney, Sydney, Australia.
Abstract:
NADPH oxidase 4 (Nox4) is reported to be the major source of reactive oxygen species (ROS) in the kidneys during the early stages of diabetic nephropathy. It has been shown to mediate TGFβ1-induced differentiation of cardiac fibroblasts into myofibroblasts. Despite TGFβ1 being recognised as a mediator of renal fibrosis and functional decline role in diabetic nephropathy, the renal interaction between Nox 4 and TGFβ1 is not well characterised. The aim of this study was to investigate the role of Nox4 inhibition on TGFβ1-induced fibrotic responses in proximal tubular cells and in a mouse model of diabetic nephropathy. Immortalised human proximal tubular cells (HK2) were incubated with TGFβ1 ± plumbagin (an inhibitor of Nox4) or specific Nox4 siRNA. Collagen IV and fibronectin mRNA and protein expression were measured. Streptozotocin (STZ) induced diabetic C57BL/6J mice were administered plumbagin (2 mg/kg/day) or vehicle (DMSO; 50 µl/mouse) for 24 weeks. Metabolic, physiological and histological markers of nephropathy were determined. TGFβ1 increased Nox4 mRNA expression and plumbagin and Nox4 siRNA significantly inhibited TGF-β1 induced fibronectin and collagen IV expression in human HK2 cells. STZ-induced diabetic C57BL/6J mice developed physiological features of diabetic nephropathy at 24 weeks, which were reversed with concomitant plumbagin treatment. Histologically, plumbagin ameliorated diabetes induced upregulation of extracellular matrix protein expression compared to control. This study demonstrates that plumbagin ameliorates the development of diabetic nephropathy through pathways that include Nox4 signalling.
Insights
NADPH oxidase 4 (Nox4) inhibition ameliorates diabetic nephropathy. Plumbagin, a Nox4 inhibitor, reduced kidney fibrosis and improved physiological markers in a mouse model, highlighting Nox4
Area of Science:
- Nephrology
- Diabetology
- Oxidative Stress Research
Background:
- Diabetic nephropathy involves kidney fibrosis and functional decline, partly mediated by TGFβ1.
- NADPH oxidase 4 (Nox4) is a key source of reactive oxygen species (ROS) in early diabetic kidney disease.
- The interaction between Nox4 and TGFβ1 in renal fibrosis is not fully understood.
Purpose of the Study:
- To investigate the role of Nox4 inhibition in TGFβ1-induced fibrotic responses in proximal tubular cells.
- To evaluate the therapeutic potential of Nox4 inhibition in a mouse model of diabetic nephropathy.
Main Methods:
- Human proximal tubular HK2 cells were treated with TGFβ1 and plumbagin (Nox4 inhibitor) or Nox4 siRNA.
- Collagen IV and fibronectin expression were assessed at mRNA and protein levels.
- Diabetic C57BL/6J mice induced by streptozotocin (STZ) were treated with plumbagin for 24 weeks, with metabolic, physiological, and histological analyses.
Main Results:
- TGFβ1 increased Nox4 mRNA expression in HK2 cells.
- Plumbagin and Nox4 siRNA significantly inhibited TGFβ1-induced fibronectin and collagen IV expression.
- Plumbagin treatment reversed physiological and histological markers of diabetic nephropathy in STZ-induced mice, including extracellular matrix protein upregulation.
Conclusions:
- Nox4 signaling is involved in TGFβ1-induced fibrotic responses in renal proximal tubular cells.
- Inhibition of Nox4 by plumbagin ameliorates the development of diabetic nephropathy.
- Targeting Nox4 represents a potential therapeutic strategy for diabetic kidney disease.
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