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Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Mechanisms of aortic and cardiac dysfunction in uremic mice with aortic calcification
Julien Maizel1, Isabelle Six, Michel Slama
1INSERM, Unit ERI-12, and Jules Verne University of Picardie and Amiens University Medical Center, Amiens, France.
Background:
Chronic renal failure (CRF) is associated with cardiac dysfunction and increased aortic stiffness. The mechanisms involved are not clearly understood. We examined changes over time in cardiac and aortic function in a murine CRF model.
Methods And Results:
Eight-week-old mice were randomly assigned to 1 of 4 groups: wild-type non-CRF, wild-type CRF, apolipoprotein E knockout non-CRF, and apolipoprotein E knockout CRF. Echocardiography was performed and blood samples were taken at baseline and after 6 and 10 weeks of CRF. Vascular reactivity and adhesion molecule expression were studied after 6 and 10 weeks of CRF. Left ventricular hypertrophy, altered left ventricular relaxation, and increased aortic stiffness were observed after 6 weeks of CRF and persisted after 10 weeks. The 4 groups of mice did not significantly differ in terms of arterial blood pressure and aortic structure. The degree of vascular calcification and serum total cholesterol concentration were higher in the CRF groups than in the non-CRF groups. These changes, however, could not explain the cardiac and vascular differences seen in the 2 CRF groups. In contrast, alterations in vascular reactivity, the upregulation of adhesion molecule expression, and CRF status were significantly associated with these changes.
Conclusions:
In a mouse model of CRF, left ventricular hypertrophy, cardiac diastolic dysfunction, and increased aortic stiffness were not related to structural changes in the aorta (including aortic calcification) or high serum cholesterol levels. However, cardiac and aortic abnormalities were associated with the extent of subendothelial dysfunction and the severity of CRF.
Insights
Chronic renal failure (CRF) causes cardiac and aortic abnormalities, not explained by structural changes or cholesterol. These issues are linked to subendothelial dysfunction and CRF severity in mice.
Area of Science:
- Cardiovascular Medicine
- Nephrology
- Vascular Biology
Background:
- Chronic renal failure (CRF) is linked to cardiac dysfunction and aortic stiffness.
- Underlying mechanisms require further investigation.
- This study explores temporal changes in cardiac and aortic function in a murine CRF model.
Purpose of the Study:
- To investigate the development of cardiac and aortic abnormalities over time in a mouse model of chronic renal failure.
- To determine the relationship between CRF, cardiac function, aortic stiffness, and vascular changes.
Main Methods:
- Mice were assigned to wild-type or apolipoprotein E knockout groups, with or without CRF induction.
- Echocardiography, blood sampling, vascular reactivity, and adhesion molecule expression were assessed over 10 weeks.
- Key parameters included left ventricular function, aortic stiffness, blood pressure, aortic structure, vascular calcification, and cholesterol levels.
Main Results:
- CRF induced left ventricular hypertrophy, impaired relaxation, and increased aortic stiffness within 6 weeks, persisting to 10 weeks.
- No significant differences in arterial blood pressure or aortic structure were observed between groups.
- Increased vascular calcification and cholesterol were noted in CRF groups but did not fully explain cardiac/vascular changes.
Conclusions:
- In this CRF mouse model, cardiac and aortic abnormalities were not attributed to aortic calcification or high cholesterol.
- Alterations in vascular reactivity and adhesion molecule expression were associated with CRF.
- Subendothelial dysfunction and CRF severity correlated with cardiac and aortic abnormalities.
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