Scinovex
articleTop 1% cited

NAD(P)H oxidase and uncoupled nitric oxide synthase are major sources of glomerular superoxide in rats with experimental diabetic nephropathy

American Journal of Physiology-Renal Physiology · 2005 · Vol. 288(6) · pp. F1144–F1152
Minoru SatohSohachi FujimotoYoshisuke HarunaSayaka ArakawaHideyuki HorikeNorio KomaiTamaki SasakiKatsuhiko TsujiokaHirofumi MakinoNaoki Kashihara

Abstract

Increased production of reactive oxygen species (ROS) in diabetes may be a common pathway linking diverse pathogenic mechanisms of diabetic vascular complications, including nephropathy. Assessment of the oxidative stress production pathway is therefore important for the prediction and prevention of diabetic complications. However, ROS production mechanisms remain unclear in diabetic glomeruli. To identify the source and determine the mechanisms of ROS production in the diabetic kidney, diabetes was induced with streptozotocin in rats. After 6 wk, glomerular ROS production had increased in the streptozotocin rat kidney, as assessed by dihydroethidium-derived chemiluminescence. ROS production was increased by the addition of NADH or L-arginine and was partially reduced by the addition of diphenylene iodonium or N(G)-nitro-L-arginine methyl ester, identifying NAD(P)H oxidase and nitric oxide (NO) synthase (NOS) as ROS sources. The mRNA and protein expression of endothelial NOS (eNOS), as measured by real-time RT-PCR and Western blotting, increased significantly (mRNA level, 1.3-fold; protein level, 1.8-fold). However, the dimeric form of eNOS was decreased in diabetic glomeruli, as measured by low-temperature SDS-PAGE. Production of renal ROS and NO by uncoupled NOS was imaged by confocal laser microscopy after renal perfusion of 2',7'-dichlorofluorescein diacetate (a ROS marker) and diaminorhodamine-4M AM (a NO marker) with L-arginine. Accelerated ROS production and diminished bioavailable NO caused by NOS uncoupling were noted in the diabetic kidney. Administration of tetrahydrobiopterin (BH4), a cofactor for eNOS, reversed the decreased dimeric form of eNOS and glomerular NO production. Our results indicate that NAD(P)H oxidase and uncoupling of eNOS contribute to glomerular ROS production, mediated by the loss of BH4 availability. These mechanisms are potential key targets for therapeutic interventions.

Nitric Oxide and Endothelin EffectsNeutrophil, Myeloperoxidase and Oxidative MechanismsEicosanoids and Hypertension PharmacologyEnosDiabetic nephropathyInternal medicineEndocrinologyNitric oxide synthaseNitric oxideOxidative stressReactive oxygen speciesChemistryStreptozotocin

MeSH terms

AnimalsAntioxidantsBiopterinsDiabetic NephropathiesKidney GlomerulusMaleNitric OxideSuperoxidesTyrosineGene Expression Regulation, EnzymologicRats, Sprague-DawleyOxidative StressNitric Oxide SynthaseNADPH OxidasesRats
Citations
353
FWCI
11.67
field-weighted impact
References
47
Percentile
99%
vs. same field & year
Citations per year
Cited by
References
Mechanisms Underlying Endothelial Dysfunction in Diabetes Mellitus
Circulation Research · 2001 · 1,189 citations
Oxidative Stress and Diabetic Vascular Complications
Diabetes Care · 1996 · 1,924 citations
Hypercholesterolemia increases endothelial superoxide anion production.
Journal of Clinical Investigation · 1993 · 1,774 citations
Free radicals and diabetes
Free Radical Biology and Medicine · 1988 · 1,105 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

NAD(P)H oxidase and uncoupled nitric oxide synthase are major sources of glomerular superoxide in rats with experimental diabetic nephropathy · Scinovex