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Updated: Feb 14, 2026

A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
Type 1 diabetes mellitus induces structural changes and molecular remodelling in the rat kidney
Raphael M Singh1,2, Frank C Howarth3, Ernest Adeghate4
1School of Forensic and Applied Sciences, University of Central Lancashire, Preston, England, PR1 2HE, UK. raphael_singh@yahoo.com.
Abstract:
There is much evidence that diabetes mellitus (DM)-induced hyperglycemia (HG) is responsible for kidney failure or nephropathy leading to cardiovascular complications. Cellular and molecular mechanism(s) whereby DM can damage the kidney is still not fully understood. This study investigated the effect of streptozotocin (STZ)-induced diabetes (T1DM) on the structure and associated molecular alterations of the isolated rat left kidney following 2 and 4 months of the disorder compared to the respective age-matched controls. The results revealed hypertrophy and general disorganized architecture of the kidney characterized by expansion in glomerular borders, tubular atrophy and increased vacuolization of renal tubular epithelial cells in the diabetic groups compared to controls. Electron microscopic analysis revealed ultrastructural alterations in the left kidney highlighted by an increase in glomerular basement membrane width. In addition, increased caspase-3 immunoreactivity was observed in the kidney of T1DM animals compared to age-matched controls. These structural changes were associated with elevated extracellular matrix (ECM) deposition and consequently, altered gene expression profile of ECM key components, together with elevated levels of key mediators (MMP9, integrin 5α, TIMP4, CTGF, vimentin) and reduced expressions of Cx43 and MMP2 of the ECM. Marked hypertrophy of the kidney was highlighted by increased atrial natriuretic peptide (ANP) and brain natriuretic peptide (BNP) gene expression. These changes also correlated with increased TGFβ1 activity, gene expression in the left kidney and elevated active TGFβ1 in the plasma of T1DM rats compared to control. The results clearly demonstrated that TIDM could elicit severe structural changes and alteration in biochemical markers (remodelling) in the kidney leading to diabetic nephropathy (DN).
Insights
Diabetes causes kidney damage through hyperglycemia, leading to structural and molecular changes. This study reveals significant kidney alterations in streptozotocin-induced diabetic rats, contributing to diabetic nephropathy.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- Diabetes mellitus (DM)-induced hyperglycemia is linked to kidney failure and cardiovascular issues.
- The precise cellular and molecular mechanisms of DM-induced kidney damage remain unclear.
- Understanding these mechanisms is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the structural and molecular effects of streptozotocin-induced type 1 diabetes (T1DM) on rat kidneys.
- To compare alterations in diabetic rat kidneys with age-matched controls at 2 and 4 months.
- To elucidate the molecular pathways involved in T1DM-related kidney damage.
Main Methods:
- Induction of type 1 diabetes in rats using streptozotocin (STZ).
- Histological and electron microscopic analysis of kidney structure.
- Assessment of molecular markers including gene expression, protein levels, and enzyme activity (e.g., caspase-3, TGFβ1).
Main Results:
- Diabetic rat kidneys exhibited hypertrophy, disorganized architecture, glomerular expansion, tubular atrophy, and vacuolization.
- Ultrastructural analysis showed increased glomerular basement membrane width and caspase-3 activity.
- Elevated extracellular matrix deposition, altered gene expression of ECM components, and increased TGFβ1 activity were observed.
Conclusions:
- T1DM induces significant structural and molecular alterations in the kidney, consistent with diabetic nephropathy.
- Key molecular mediators and extracellular matrix remodeling play critical roles in T1DM-induced kidney damage.
- These findings highlight potential therapeutic targets for preventing or mitigating diabetic kidney disease.
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