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Updated: Jun 26, 2026

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Alteration of renal respiratory Complex-III during experimental type-1 diabetes
Shankar Munusamy1, Hamida Saba, Tanecia Mitchell
1Department of Pharmacology & Toxicology, Division of Nephrology, College of Medicine, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA. munusamyshankar@uams.edu
Background:
Diabetes has become the single most common cause for end-stage renal disease in the United States. It has been established that mitochondrial damage occurs during diabetes; however, little is known about what initiates mitochondrial injury and oxidant production during the early stages of diabetes. Inactivation of mitochondrial respiratory complexes or alteration of their critical subunits can lead to generation of mitochondrial oxidants, mitochondrial damage, and organ injury. Thus, one goal of this study was to determine the status of mitochondrial respiratory complexes in the rat kidney during the early stages of diabetes (5-weeks post streptozotocin injection).
Methods:
Mitochondrial complex activity assays, blue native gel electrophoresis (BN-PAGE), Complex III immunoprecipitation, and an ATP assay were performed to examine the effects of diabetes on the status of respiratory complexes and energy levels in renal mitochondria. Creatinine clearance and urine albumin excretion were measured to assess the status of renal function in our model.
Results:
Interestingly, of all four respiratory complexes only cytochrome c reductase (Complex-III) activity was significantly decreased, whereas two Complex III subunits, Core 2 protein and Rieske protein, were up regulated in the diabetic renal mitochondria. The BN-PAGE data suggested that Complex III failed to assemble correctly, which could also explain the compensatory upregulation of specific Complex III subunits. In addition, the renal F0F1-ATPase activity and ATP levels were increased during diabetes.
Conclusion:
In summary, these findings show for the first time that early (and selective) inactivation of Complex-III may contribute to the mitochondrial oxidant production which occurs in the early stages of diabetes.
Insights
Early diabetes selectively inactivates mitochondrial Complex-III in rat kidneys, leading to increased oxidant production. This early mitochondrial dysfunction may contribute to diabetic kidney disease progression.
Area of Science:
- Mitochondrial biochemistry
- Diabetic nephropathy research
- Renal pathophysiology
Background:
- Diabetes is the leading cause of end-stage renal disease in the US.
- Mitochondrial damage is known in diabetes, but early triggers are unclear.
- Inactivation of mitochondrial respiratory complexes can cause organ injury.
Purpose of the Study:
- To investigate the status of mitochondrial respiratory complexes in rat kidneys during early diabetes (5 weeks post-streptozotocin).
- To identify early changes in mitochondrial function that may initiate injury and oxidant production.
Main Methods:
- Assessed mitochondrial complex activity, blue native gel electrophoresis (BN-PAGE), and ATP levels.
- Examined Complex III subunits and performed immunoprecipitation.
- Measured creatinine clearance and urine albumin excretion to evaluate renal function.
Main Results:
- Cytochrome c reductase (Complex-III) activity was significantly decreased in diabetic rat kidneys.
- Two Complex III subunits (Core 2, Rieske) were upregulated, suggesting assembly issues.
- Renal F0F1-ATPase activity and ATP levels were elevated in diabetic mitochondria.
Conclusions:
- Early, selective inactivation of Complex-III is identified as a potential contributor to mitochondrial oxidant production in early diabetes.
- This finding provides novel insight into the mechanisms of diabetic kidney injury.
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