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Updated: Jun 7, 2026

5/6th Nephrectomy in Combination with High Salt Diet and Nitric Oxide Synthase Inhibition to Induce Chronic Kidney Disease in the Lewis Rat
Published on: July 3, 2013
Genomic damage in the progression of chronic kidney disease in rats
Camila Hirotsu1, Sergio Tufik, Daniel A Ribeiro
1Departamento de Psicobiologia, Universidade Federal de Sao Paulo (UNIFESP), Sao Paulo, Brazil.
Abstract:
Patients with chronic renal failure exhibit massive oxidative genome damage and an elevated risk of cancer. Previous studies have demonstrated the relationship between DNA damage and carcinogenesis. The current study aimed to investigate whether the progression of chronic kidney disease induces genomic damage in an animal model. Adult Wistar rats were assigned to either the control or chronic kidney disease groups. The chronic kidney disease group was subdistributed into five groups with progressively longer durations of disease (30, 60, 90, 120 and 150 days). The results showed that chronic kidney disease induced genomic damage in the blood, liver and kidney cells during all periods evaluated, as indicated by the mean tail moment measured in the comet assay. In brain cells, no genetic damage was induced at early/intermediate disease durations; however, positive genotoxicity was found at 120 and 150 days. Blood pressure and pro-inflammatory cytokine levels (IL-1α, IL-1β, IL-6 and TNFα) were increased after chronic kidney disease induction, while blood iron concentration was significantly reduced in these animals. The results suggest that chronic kidney disease progression contributes to DNA damage in blood, liver, kidney and brain and that such damage can be mediated by hypertension, an inflammatory status and iron deficiency. Additionally, the brain was sensitive to genotoxic insult after extended chronic kidney disease, suggesting a potentially important role of genetic damage in the neurological disorders of end-stage renal patients.
Insights
Chronic kidney disease progression causes genome damage in blood, liver, and kidneys. Brain damage occurs later, linked to hypertension, inflammation, and iron deficiency in chronic renal failure patients.
Area of Science:
- Nephrology
- Genotoxicology
- Biomedical Research
Background:
- Chronic renal failure is associated with significant oxidative genome damage and increased cancer risk.
- Previous research established a link between DNA damage and carcinogenesis.
- The study investigates genomic damage progression in chronic kidney disease (CKD).
Purpose of the Study:
- To determine if CKD progression induces genomic damage in an animal model.
- To evaluate DNA damage in various tissues (blood, liver, kidney, brain) over time.
- To explore potential mechanisms linking CKD to genomic damage.
Main Methods:
- Adult Wistar rats were divided into control and CKD groups.
- CKD groups experienced disease progression for 30, 60, 90, 120, and 150 days.
- Comet assay was used to measure genomic damage; blood pressure, cytokine, and iron levels were assessed.
Main Results:
- CKD induced genomic damage in blood, liver, and kidney cells throughout the study duration.
- Brain cells showed genotoxicity only at later stages (120 and 150 days).
- Hypertension, elevated pro-inflammatory cytokines (IL-1α, IL-1β, IL-6, TNFα), and reduced iron were observed in CKD rats.
Conclusions:
- CKD progression contributes to DNA damage in multiple organs, potentially mediated by hypertension, inflammation, and iron deficiency.
- The brain's susceptibility to genotoxicity increases with extended CKD duration.
- Genomic damage may play a role in neurological complications observed in end-stage renal disease.
Related Concept Videos
Chronic Kidney Disease I: Introduction
Diabetic Nephropathy
Chronic Kidney Disease II: Clinical Manifestations
Chronic Kidney Disease III: Interprofessional Care
Acute Kidney Injury II: Pathophysiology
Acute Kidney Injury IV: Diagnostic Studies and Prevention

