Modulation of renal-specific oxidoreductase/ myo -inositol oxygenase by high-glucose ambience
Open Access
- 5 December 2005
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 102 (50) , 17952-17957
- https://doi.org/10.1073/pnas.0509089102
Abstract
Biological properties of renal-specific oxidoreductase (RSOR), characteristics of its promoter, and underlying mechanisms regulating its expression in diabetes were analyzed. RSOR expression, normally confined to the renal cortex, was markedly increased and extended into the outer medullary tubules in db/db mice, a model of type 2 diabetes. Exposure of LLCPK cells to d-glucose resulted in a dose-dependent increase in RSOR expression and its enzymatic activity. The latter was related to one of the glycolytic enzymes, myo-inositol oxygenase. The increase in activity was in proportion to serum glucose concentration. The RSOR expression also increased in cells treated with various organic osmolytes, e.g., sorbitol, myoinositol, and glycerolphosphoryl-choline and H2O2. Basal promoter activity was confined to –1,252 bp upstream of ATG, and it increased with the treatment of high glucose and osmolytes. EMSAs indicated an increased binding activity with osmotic-, carbohydrate-, and oxidant-response elements in cells treated with high glucose and was abolished by competitors. Supershifts, detected by anti-nuclear factor of activated T cells, and carbohydrate-response-element-binding protein established the binding specificity. Nuclear factor of activated T cells tonicity-enhancer-binding protein and carbohydrate-response-element-binding protein had increased nuclear expression in cells treated with high glucose. The activity of osmotic-response element exhibited a unique alternate binding pattern, as yet unreported in osmoregulatory genes. Data indicate that RSOR activity is modulated by diverse mechanisms, and it is endowed with dual properties to channel glucose intermediaries, characteristic of hepatic aldehyde reductases, and to maintain osmoregulation, a function of renal medullary genes, e.g., aldose reductase, in diabetes.Keywords
This publication has 37 references indexed in Scilit:
- Renal-specific oxidoreductase biphasic expression under high glucose ambience during fetal versus neonatal developmentKidney International, 2005
- Role of Upstream Stimulatory Factors in Regulation of Renal Transforming Growth Factor-β1Diabetes, 2005
- The SufE Sulfur-acceptor Protein Contains a Conserved Core Structure that Mediates Interdomain Interactions in a Variety of Redox Protein ComplexesJournal of Molecular Biology, 2004
- Mediators of Diabetic Renal DiseaseJournal of the American Society of Nephrology, 2004
- Modification of Proteins In Vitro by Physiological Levels of GlucoseJournal of Biological Chemistry, 2003
- High Glucose Stimulates Synthesis of Fibronectin via a Novel Protein Kinase C, Rap1b, and B-Raf Signaling PathwayPublished by Elsevier ,2002
- Isolation and Functional Analysis of Mouse UbA52 Gene and Its Relevance to Diabetic NephropathyJournal of Biological Chemistry, 2002
- Biochemistry and molecular cell biology of diabetic complicationsNature, 2001
- The tubulointerstitium in progressive renal diseaseKidney International, 1998
- Selective decreased de novo synthesis of glomerular proteoglycans under the influence of reactive oxygen species.Proceedings of the National Academy of Sciences, 1992