RAGE-induced cytosolic ROS promote mitochondrial superoxide generation in diabetes
Melinda T Coughlan1, David R Thorburn, Sally A Penfold
1Juvenile Diabetes Research Foundation Einstein Centre for Diabetes Complications, Division of Diabetes Complications, Baker IDI Heart and Diabetes Institute, Melbourne, Victoria, Australia. melinda.coughlan@bakeridi.edu.au
Abstract:
Damaged mitochondria generate an excess of superoxide, which may mediate tissue injury in diabetes. We hypothesized that in diabetic nephropathy, advanced glycation end-products (AGEs) lead to increases in cytosolic reactive oxygen species (ROS), which facilitate the production of mitochondrial superoxide. In normoglycemic conditions, exposure of primary renal cells to AGEs, transient overexpression of the receptor for AGEs (RAGE) with an adenoviral vector, and infusion of AGEs to healthy rodents each induced renal cytosolic oxidative stress, which led to mitochondrial permeability transition and deficiency of mitochondrial complex I. Because of a lack of glucose-derived NADH, which is the substrate for complex I, these changes did not lead to excess production of mitochondrial superoxide; however, when we performed these experiments in hyperglycemic conditions in vitro or in diabetic rats, we observed significant generation of mitochondrial superoxide at the level of complex I, fueled by a sustained supply of NADH. Pharmacologic inhibition of AGE-RAGE-induced mitochondrial permeability transition in vitro abrogated production of mitochondrial superoxide; we observed a similar effect in vivo after inhibiting cytosolic ROS production with apocynin or lowering AGEs with alagebrium. Furthermore, RAGE deficiency prevented diabetes-induced increases in renal mitochondrial superoxide and renal cortical apoptosis in mice. Taken together, these studies suggest that AGE-RAGE-induced cytosolic ROS production facilitates mitochondrial superoxide production in hyperglycemic environments, providing further evidence of a role for the advanced glycation pathway in the development and progression of diabetic nephropathy.
Insights
Advanced glycation end-products (AGEs) and their receptor (RAGE) increase mitochondrial superoxide in diabetes. This AGE-RAGE pathway contributes to kidney damage in diabetic nephropathy.
Area of Science:
- Biochemistry
- Cell Biology
- Nephrology
Background:
- Mitochondrial superoxide contributes to tissue injury in diabetes.
- Advanced glycation end-products (AGEs) are implicated in diabetic complications.
Purpose of the Study:
- To investigate the role of AGEs and their receptor (RAGE) in mitochondrial superoxide production in diabetic nephropathy.
- To elucidate the mechanism by which AGEs induce oxidative stress and mitochondrial dysfunction.
Main Methods:
- Primary renal cells and rodents were exposed to AGEs and RAGE overexpression.
- Experiments were conducted under normoglycemic and hyperglycemic conditions.
- Pharmacologic inhibitors and genetic deficiency models were utilized.
Main Results:
- AGEs induced cytosolic oxidative stress, mitochondrial permeability transition, and Complex I deficiency.
- Hyperglycemia fueled mitochondrial superoxide production at Complex I via sustained NADH.
- Inhibition of AGE-RAGE signaling or cytosolic ROS abrogated mitochondrial superoxide.
Conclusions:
- AGE-RAGE-induced cytosolic ROS facilitates mitochondrial superoxide production in hyperglycemia.
- The advanced glycation pathway plays a significant role in diabetic nephropathy progression.
- Targeting AGE-RAGE signaling may offer therapeutic strategies for diabetic kidney disease.
Related Concept Videos
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Mitochondrial Membranes
The Electron Transport Chain
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q in...


