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Updated: May 3, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Reproducing human diabetic nephropathy in a novel obesity-driven animal model
Silvia Teixidó-Trujillo1,2, Esteban Porrini3,2, María Fernanda Toniolo4
1Faculty of Medicine, University of La Laguna, Santa Cruz de Tenerife, Spain.
Abstract:
Diabetic nephropathy is a leading cause of end-stage kidney disease worldwide, yet its complex pathogenesis remains incompletely understood. This is partly due to limitations of existing preclinical models, which are often genotypic, monogenic, and fail to replicate the chronic progression and advanced renal damage observed in humans. We previously developed a nongenotypic rat model of type 2 diabetes model using obese male Sprague Dawley rats chronically treated with low-dose tacrolimus, which reproduced key metabolic features of human type 2 diabetes. In this study, we investigated the onset and progression of diabetic nephropathy in this model. Glomerular filtration rate was measured by iohexol-dried blood sample (DBS) plasma clearance. Twenty-four-hour urine collection was performed to assess albuminuria and proteinuria. At the endpoint, kidneys were collected for histological evaluation. Tacrolimus blood levels were monitored monthly. Diabetic animals initially exhibited glomerular hyperfiltration, followed by a decline in glomerular filtration rate at the final stage of the study, consistent with the trajectory observed in humans. This was accompanied by a trend toward increased proteinuria. Histological analysis revealed mesangial matrix expansion, a higher incidence of glomeruli with focal segmental glomerulosclerosis and significant glomerular hypertrophy. In addition, we observed increased kidney weight, tubular hypertrophy, intraglomerular and tubulointerstitial fibrosis, and elevated cortical expression of proinflammatory markers. This model reproduced both early and advanced pathological features of human diabetic nephropathy, representing a valuable tool for studying diabetic nephropathy pathophysiology in a chronic context and as a platform for evaluating potential therapeutic strategies.NEW & NOTEWORTHY We present a nongenotypic, obesity- and tacrolimus-induced rat model that recapitulates the chronic progression of human diabetic nephropathy. The model reproduces key early and advanced features, including hyperfiltration, glomerular filtration rate (GFR) decline, glomerular hypertrophy, mesangial expansion, nodular sclerotic lesions, and tubular-interstitial fibrosis. Its translational relevance and long-term progression provide a valuable platform for mechanistic studies and for evaluating potential therapeutic strategies.
Insights
This study presents a novel rat model for diabetic nephropathy, mimicking human disease progression. The model shows early hyperfiltration, later decline, and key pathological changes, aiding research into kidney disease treatments.
Area of Science:
- Nephrology
- Endocrinology
- Pharmacology
Background:
- Diabetic nephropathy is a major cause of kidney failure globally.
- Current preclinical models inadequately replicate human disease complexity and progression.
- A non-genotypic type 2 diabetes rat model using Tacrolimus was previously established.
Purpose of the Study:
- To investigate the onset and progression of diabetic nephropathy in the established Tacrolimus-induced type 2 diabetes rat model.
- To evaluate the model's capacity to replicate human diabetic nephropathy pathophysiology.
- To assess the utility of this model for studying chronic kidney disease and therapeutic strategies.
Main Methods:
- Obese Sprague Dawley rats received chronic low-dose Tacrolimus to induce type 2 diabetes.
- Glomerular filtration rate (GFR) assessed via iohexol-DBS plasma clearance.
- Albuminuria and proteinuria measured through 24-hour urine collections.
- Kidney histology, weight, and cortical pro-inflammatory marker expression analyzed at study endpoint.
- Tacrolimus blood levels monitored monthly.
Main Results:
- Diabetic rats exhibited initial glomerular hyperfiltration followed by a late-stage GFR decline.
- A trend toward increased proteinuria was observed.
- Histological findings included mesangial expansion, increased Focal Segmental Glomerulosclerosis, glomerular hypertrophy, increased kidney weight, tubular hypertrophy, fibrosis, and elevated pro-inflammatory markers.
- The model successfully reproduced early and advanced pathological features of human diabetic nephropathy.
Conclusions:
- The Tacrolimus-induced type 2 diabetes rat model effectively replicates key aspects of human diabetic nephropathy.
- This model serves as a valuable tool for investigating the chronic pathophysiology of diabetic kidney disease.
- It provides a platform for evaluating novel therapeutic interventions for diabetic nephropathy.
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