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Published on: July 3, 2013
Nox4 NAD(P)H oxidase mediates hypertrophy and fibronectin expression in the diabetic kidney
Yves Gorin1, Karen Block, James Hernandez
1Department of Medicine, University of Texas Health Science Center, San Antonio, Texas 78229-3900, USA. gorin@uthscsa.edu
Abstract:
Renal hypertrophy and extracellular matrix accumulation are early features of diabetic nephropathy. We investigated the role of the NAD(P)H oxidase Nox4 in generation of reactive oxygen species (ROS), hypertrophy, and fibronectin expression in a rat model of type 1 diabetes induced by streptozotocin. Phosphorothioated antisense (AS) or sense oligonucleotides for Nox4 were administered for 2 weeks with an osmotic minipump 72 h after streptozotocin treatment. Nox4 protein expression was increased in diabetic kidney cortex compared with non-diabetic controls and was down-regulated in AS-treated animals. AS oligonucleotides inhibited NADPH-dependent ROS generation in renal cortical and glomerular homogenates. ROS generation by intact isolated glomeruli from diabetic animals was increased compared with glomeruli isolated from AS-treated animals. AS treatment reduced whole kidney and glomerular hypertrophy. Moreover, the increased expression of fibronectin protein was markedly reduced in renal cortex including glomeruli of AS-treated diabetic rats. Akt/protein kinase B and ERK1/2, two protein kinases critical for cell growth and hypertrophy, were activated in diabetes, and AS treatment almost abolished their activation. In cultured mesangial cells, high glucose increased NADPH oxidase activity and fibronectin expression, effects that were prevented in cells transfected with AS oligonucleotides. These data establish a role for Nox4 as the major source of ROS in the kidneys during early stages of diabetes and establish that Nox4-derived ROS mediate renal hypertrophy and increased fibronectin expression.
Insights
Nox4 oxidase is a key source of reactive oxygen species (ROS) in diabetic kidneys, driving hypertrophy and fibronectin accumulation. Inhibiting Nox4 reduces these damaging effects in early diabetic nephropathy.
Area of Science:
- Nephrology
- Diabetology
- Molecular Biology
Background:
- Diabetic nephropathy is characterized by renal hypertrophy and extracellular matrix accumulation.
- NAD(P)H oxidase 4 (Nox4) is implicated in reactive oxygen species (ROS) generation.
Purpose of the Study:
- To investigate the role of Nox4 in ROS generation, hypertrophy, and fibronectin expression in a rat model of type 1 diabetes.
- To determine if inhibiting Nox4 can ameliorate early diabetic kidney injury.
Main Methods:
- Streptozotocin-induced type 1 diabetes in rats.
- Administration of Nox4 antisense (AS) oligonucleotides via osmotic minipump.
- Measurement of ROS generation, kidney/glomerular hypertrophy, fibronectin expression, and protein kinase activation (Akt, ERK1/2).
- In vitro studies using cultured mesangial cells exposed to high glucose.
Main Results:
- Nox4 protein expression and NADPH-dependent ROS generation were increased in diabetic rat kidneys.
- AS treatment significantly reduced ROS generation, renal and glomerular hypertrophy, and fibronectin expression.
- Activation of Akt and ERK1/2 pathways was attenuated by AS treatment.
- High glucose-induced NADPH oxidase activity and fibronectin expression in mesangial cells were prevented by Nox4 AS oligonucleotides.
Conclusions:
- Nox4 is a major source of ROS in the kidneys during early diabetes.
- Nox4-derived ROS mediate renal hypertrophy and fibronectin accumulation in diabetic nephropathy.
- Targeting Nox4 may be a therapeutic strategy for early diabetic kidney disease.
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