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Development and prevention of advanced diabetic nephropathy in RAGE-overexpressing mice
1Department of Biochemistry and Molecular Vascular Biology, Kanazawa University Graduate School of Medical Science, Kanazawa, Japan. yamamoto@med.kanazawa-u.ac.jp
Abstract:
Vascular complications arising from multiple environmental and genetic factors are responsible for many of the disabilities and short life expectancy associated with diabetes mellitus. Here we provide the first direct in vivo evidence that interactions between advanced glycation end products (AGEs; nonenzymatically glycosylated protein derivatives formed during prolonged hyperglycemic exposure) and their receptor, RAGE, lead to diabetic vascular derangement. We created transgenic mice that overexpress human RAGE in vascular cells and crossbred them with another transgenic line that develops insulin-dependent diabetes shortly after birth. The resultant double transgenic mice exhibited increased hemoglobin A(1c) and serum AGE levels, as did the diabetic controls. The double transgenic mice demonstrated enlargement of the kidney, glomerular hypertrophy, increased albuminuria, mesangial expansion, advanced glomerulosclerosis, and increased serum creatinine compared with diabetic littermates lacking the RAGE transgene. To our knowledge, the development of this double transgenic mouse provides the first animal model that exhibits the renal changes seen in humans. Furthermore, the phenotypes of advanced diabetic nephropathy were prevented by administering an AGE inhibitor, (+/-)-2-isopropylidenehydrazono-4-oxo-thiazolidin-5-ylacetanilide (OPB-9195), thus establishing the AGE-RAGE system as a promising target for overcoming this aspect of diabetic pathogenesis.
Insights
Advanced glycation end products (AGEs) and their receptor RAGE drive diabetic vascular damage. Inhibiting this AGE-RAGE interaction in a novel mouse model prevented kidney disease, offering a therapeutic target.
Area of Science:
- Endocrinology
- Nephrology
- Molecular Biology
Background:
- Diabetic vascular complications contribute to significant morbidity and mortality.
- Advanced glycation end products (AGEs) accumulate with hyperglycemia.
- The receptor for AGEs (RAGE) plays a role in inflammatory and vascular processes.
Purpose of the Study:
- To investigate the in vivo role of the AGE-RAGE axis in diabetic nephropathy.
- To develop and characterize a novel transgenic mouse model of diabetic kidney disease.
Main Methods:
- Created double transgenic mice overexpressing human RAGE in vascular cells and developing diabetes.
- Analyzed renal pathology, including kidney size, glomerular hypertrophy, albuminuria, and glomerulosclerosis.
- Administered an AGE inhibitor (OPB-9195) to assess its therapeutic effect.
Main Results:
- Double transgenic mice exhibited exacerbated diabetic nephropathy compared to diabetic controls.
- The developed mouse model demonstrated key renal changes seen in human diabetic kidney disease.
- AGE inhibitor treatment prevented the progression of advanced diabetic nephropathy phenotypes.
Conclusions:
- The interaction between AGEs and RAGE is a critical driver of diabetic vascular derangement, particularly in the kidneys.
- The double transgenic mouse model accurately recapitulates human diabetic nephropathy.
- Targeting the AGE-RAGE system presents a promising therapeutic strategy for diabetic kidney disease.
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