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Published on: November 7, 2017
Cardiac Inflammation, Oxidative Stress, Nrf2 Expression, and Coagulation Events in Mice with Experimental Chronic
Abderrahim Nemmar1,2, Suhail Al-Salam2,3, Sumaya Beegam1
1Department of Physiology, College of Medicine and Health Sciences, United Arab Emirates University, P.O. Box 17666, Al Ain, UAE.
Abstract:
Chronic kidney disease (CKD) is known to be associated with cardiovascular dysfunction. Dietary adenine intake in mice is also known to induce CKD. However, in this experimental model, the mechanisms underlying the cardiotoxicity and coagulation disturbances are not fully understood. Here, we evaluated cardiac inflammation, oxidative stress, DNA damage, and coagulation events in mice with adenine (0.2% w/w in feed for 4 weeks)-induced CKD. Control mice were fed with normal chow for the same duration. Adenine increased water intake, urine output, relative kidney weight, the plasma concentrations of urea and creatinine, and the urinary concentrations of kidney injury molecule-1 and neutrophil gelatinase-associated lipocalin. It also decreased the body weight and creatinine clearance, and caused kidney DNA damage. Renal histological analysis showed tubular dilation and damage and neutrophilic influx. Adenine induced a significant increase in systolic blood pressure and the concentrations of troponin I, tumor necrosis factor-α, and interleukin-1β in heart homogenates. It also augmented the levels of markers of lipid peroxidation measured by malondialdehyde production and 8-isoprostane, as well as the antioxidants superoxide dismutase and catalase. Immunohistochemical analysis of the hearts showed that adenine increased the expression of nuclear factor erythroid-derived 2-like 2 by cardiomyocytes. It also caused cardiac DNA damage. Moreover, compared with the control group, adenine induced a significant increase in the number of circulating platelet and shortened the thrombotic occlusion time in pial arterioles and venules in vivo, and induced a significant reduction in the prothrombin time and activated partial thromboplastin time. In conclusion, the administration of adenine in mice induced CKD-associated cardiac inflammation, oxidative stress, Nrf2 expression, and DNA damage. It also induced prothrombotic events in vivo. Therefore, this model can be satisfactorily used to study the cardiac pathophysiological events in subjects with CKD and the effect of drug treatment thereon.
Insights
Dietary adenine induces chronic kidney disease (CKD) in mice, leading to cardiac inflammation, oxidative stress, and DNA damage. This model effectively simulates CKD-related cardiovascular dysfunction and prothrombotic events.
Area of Science:
- Nephrology
- Cardiology
- Biochemistry
Background:
- Chronic kidney disease (CKD) is linked to cardiovascular complications.
- The mechanisms of cardiotoxicity and coagulation issues in adenine-induced CKD models require further investigation.
Purpose of the Study:
- To investigate cardiac inflammation, oxidative stress, DNA damage, and coagulation disturbances in adenine-induced CKD mice.
- To establish a reliable mouse model for studying CKD-associated cardiac pathophysiology.
Main Methods:
- Mice were fed adenine (0.2% w/w) or normal chow for 4 weeks.
- Evaluated kidney function, cardiac biomarkers (troponin I, TNF-α, IL-1β), oxidative stress markers (MDA, 8-isoprostane, SOD, catalase), DNA damage, and coagulation parameters (PT, aPTT).
- Histological and immunohistochemical analyses of kidney and heart tissues were performed.
Main Results:
- Adenine induced CKD hallmarks, including elevated urea, creatinine, kidney injury markers, and kidney DNA damage.
- Cardiac analysis revealed increased systolic blood pressure, troponin I, inflammation (TNF-α, IL-1β), oxidative stress, and DNA damage.
- Adenine also increased platelet count, shortened clotting times (PT, aPTT), and promoted in vivo thrombosis.
Conclusions:
- Adenine administration in mice successfully induces CKD with significant cardiac inflammation, oxidative stress, Nrf2 activation, DNA damage, and prothrombotic events.
- This adenine-induced CKD model is suitable for studying cardiac pathophysiology and evaluating therapeutic interventions.
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