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Glycation of mitochondrial proteins from diabetic rat kidney is associated with excess superoxide formation

American Journal of Physiology-Renal Physiology · 2005 · Vol. 289(2) · pp. F420–F430
M. RoscaTiberiu G. MustataMichael KinterAylin M. OzdemirTimothy S. KernLuke I. SzwedaMichael BrownleeVincent M. MonnierMiriam F. Weiss

Abstract

Chronic hyperglycemia causes structural alterations of proteins through the Maillard reaction. In diabetes, methylglyoxal (MGO)-induced hydroimidazolones are the predominant modification. In contrast to acute hyperglycemia, mitochondrial respiration is depressed in chronic diabetes. To determine whether MGO-derived protein modifications result in abnormalities in mitochondrial bioenergetics and superoxide formation, proteomics and functional studies were performed in renal cortical mitochondria isolated from rats with 2, 6, and 12 mo of streptozotocin-induced diabetes. MGO-modified proteins belonged to the following two pathways: 1) oxidative phosphorylation and 2) fatty acid beta-oxidation. Two of these proteins were identified as components of respiratory complex III, the major site of superoxide production in health and disease. Mitochondria from rats with diabetes exhibited a diminution of oxidative phosphorylation. A decrease in the respiratory complex III activity was significantly correlated with the quantity of MGO-derived hydroimidazolone present on mitochondrial proteins in both diabetic and control animals. In diabetes, isolated renal mitochondria produced significantly increased quantities of superoxide and showed evidence of oxidative damage. Administration of aminoguanidine improved mitochondrial respiration and complex III activity and decreased oxidative damage to mitochondrial proteins. Therefore, posttranslational modifications of mitochondrial proteins by MGO may represent pathogenic events leading to mitochondria-induced oxidative stress in the kidney in chronic diabetes.

Advanced Glycation End Products researchMitochondrial Function and PathologyAdipose Tissue and MetabolismGlycationMitochondrionOxidative phosphorylationSuperoxideMethylglyoxalOxidative stressDiabetes mellitusChemistryInternal medicineEndocrinology

MeSH terms

AnimalsBlood GlucoseDiabetes Mellitus, ExperimentalDiabetic NephropathiesEnergy MetabolismFatty AcidsGlucoseGuanidinesMaleMitochondriaMultienzyme ComplexesNADH, NADPH OxidoreductasesOxidation-ReductionOxidative PhosphorylationOxygen Consumption
Citations
349
FWCI
9.11
field-weighted impact
References
72
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98%
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Citations per year
References
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Nitric oxide synthases: structure, function and inhibition
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