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Updated: Aug 17, 2026

Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 2, 2025
Can murine diabetic nephropathy be separated from superimposed acute renal failure?
Yuet-Ching Tay1, Yiping Wang, Lukas Kairaitis
1Centre for Transplant and Renal Research, Westmead Millennium Institute, The University of Sydney at Westmead Hospital, Westmead, Sydney, Australia. Ching.Tay@wsahs.nsw.gov.au
Background:
Streptozotocin (STZ) is commonly used to induce diabetes in experimental animal models, but not without accompanying cytotoxic effects. This study was undertaken to (1) determine an optimal dose and administration route of STZ to induce diabetic nephropathy in wild-type mice but without the concurrent acute renal injury resulting from cytotoxic effects of STZ and (2) evaluate the pattern of tubular injury and interstitial inflammation in this model.
Methods:
Male Balb/c mice received either (1) STZ (225 mg/kg by intraperitoneal injection.); or (2) two doses of STZ 5 days apart (150 mg/150 mg/kg; 75 mg/150 mg/kg; 75 mg/75 mg/kg; and 100 mg/100 mg/kg by intravenous injection). Another strain of mice, C57BL/6J, also received STZ (200 mg/kg intravenously or intraperitoneally). Renal function and histology were examined at weeks 1, 2, 4, and 8 after induction of diabetes. In initial optimization studies, animals were sacrificed at week 1 or week 2 and histology examined for acute renal injury.
Results:
Following a single intraperitoneal injection of 225 mg/kg of STZ, only two thirds of animals developed hyperglycemia, yet the model was associated with focal areas of acute tubular necrosis (ATN) at week 2. ATN was also observed in C57BL/6J mice given a single intravenous or intraperitoneal dose of STZ (200 mg/kg), at week 2 post-diabetes. At an optimal diabetogenic dose and route (75 mg/150 mg/kg by intravenous injection 5 days apart), all mice developed diabetes and no ATN was observed histologically. However, even with this regimen, glomerular filtration rate (GFR) was significantly impaired from week 2. This regimen was accompanied by progressive histologic changes, including tubular and glomerular hypertrophy, mesangial area expansion, as well as interstitial macrophage, CD4+ and CD8+ T-cell accumulation.
Conclusion:
By careful optimization of STZ dose, a stable and reproducible diabetic murine model was established. However, even in this optimized model, renal functional impairment was observed. The frequency of ATN and functional impairment casts doubt on conclusions about experimental diabetic nephropathy drawn from reports in which ATN has not been excluded rigorously.
Insights
Optimizing streptozotocin (STZ) dosage in mice established a reliable diabetic nephropathy model. However, even this refined model shows renal impairment, questioning previous studies lacking rigorous acute tubular necrosis exclusion.
Area of Science:
- Nephrology
- Endocrinology
- Experimental Pathology
Background:
- Streptozotocin (STZ) is widely used to induce diabetes in animal models.
- STZ administration can cause cytotoxic effects, including acute renal injury.
- Existing models may confound diabetic nephropathy studies with STZ-induced toxicity.
Purpose of the Study:
- To determine an optimal STZ dose and route for inducing diabetic nephropathy in mice.
- To minimize concurrent acute renal injury from STZ's cytotoxic effects.
- To characterize tubular injury and interstitial inflammation in the optimized model.
Main Methods:
- Balb/c mice received varying STZ doses (intraperitoneal or intravenous).
- C57BL/6J mice were also tested with STZ.
- Renal function and histology were assessed at multiple time points post-induction.
Main Results:
- Single STZ doses induced diabetes in some mice but caused acute tubular necrosis (ATN).
- An optimized intravenous STZ regimen (75 mg/150 mg/kg) induced diabetes in all mice without ATN.
- This optimized model showed impaired glomerular filtration rate and progressive renal histological changes.
Conclusions:
- Careful STZ dose optimization yields a stable, reproducible diabetic murine model.
- Renal functional impairment is still observed even in the optimized model.
- The presence of ATN in prior studies may impact the validity of diabetic nephropathy research.
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