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Updated: Jun 2, 2026

Transverse Aortic Constriction in Mice
Published on: April 21, 2010
Diet-induced aortic valve disease in mice haploinsufficient for the Notch pathway effector RBPJK/CSL
Meritxell Nus1, Donal MacGrogan, Beatriz Martínez-Poveda
1Cardiovascular Developmental Biology Department, Centro Nacional de Investigaciones Cardiovasculares, Instituto de Salud Carlos III, 28029 Madrid, Spain.
Insights
Genetic inactivation of Notch signaling in mice leads to calcific aortic valve disease, similar to atherosclerosis. This study identifies a potential genetic mouse model for this condition.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Genetics
Background:
- Calcific aortic valve disease shares similarities with atherosclerosis, involving chronic inflammation and endothelial dysfunction.
- Heterozygous NOTCH1 mutations are linked to calcific aortic disease and bicuspid aortic valve, suggesting a role for Notch signaling.
Purpose of the Study:
- To investigate if genetic inactivation of the Notch signaling pathway predisposes mice to developing aortic valve disease when fed a specific diet.
- To establish a genetic mouse model for calcific aortic valve disease.
Main Methods:
- Mice heterozygous for null mutations in Notch1 receptor or RBPJk were fed a hypercholesterolemic diet supplemented with vitamin D.
- Evaluated disease using Doppler echocardiography, histology, immunohistochemistry, gene expression analysis, and cell culture.
- Assessed valvular changes including macrophage infiltration, collagen deposition, proosteogenic protein expression, and calcification.
Main Results:
- Heterozygous RBPJk mice developed calcific aortic disease after 16 weeks on the diet, characterized by significant valvular changes.
- Notch1 heterozygous mice showed milder changes and no significant hemodynamic disturbance.
- Reduced expression of the Notch target gene Hey1 correlated with valvular disease in RBPJk mice; in vitro studies confirmed Notch inhibition promotes osteogenic marker activation and calcification.
Conclusions:
- Disruption of Notch signaling through RBPJk inactivation causes aortic valve disease in mice.
- The lack of functional impairment in Notch1 heterozygous mice suggests other Notch receptors contribute to aortic valve homeostasis.
- This study provides a genetic mouse model for calcific aortic valve disease and may aid in identifying at-risk patient populations with reduced valvular NOTCH signaling.
Objective:
Calcific aortic valve disease is similar to atherosclerosis in that both diseases result from chronic inflammation and endothelial dysfunction. Heterozygous NOTCH1 mutations have been associated to calcific aortic disease and a bicuspid aortic valve. We investigated whether mice with genetic inactivation of the Notch signaling pathway are prone to develop valve disease when exposed to a predisposing diet.
Methods And Results:
Using Doppler echocardiography, histology, immunohistochemistry, quantitative gene expression analysis, and cell culture assays, we examined the effect of a hypercholesterolemic diet supplemented with vitamin D on mice heterozygous for null mutations in the Notch1 receptor or the effector transcription factor gene RBPJk. After 16 weeks on the hyperlipidemic diet, calcific aortic disease was detected in heterozygous RBPJk mice. Analysis of valve leaflets revealed macrophage infiltration, enhanced collagen deposition, proosteogenic protein expression, and calcification. Heterozygous null Notch1 mice displayed milder histopathologic changes and did not develop any significant hemodynamic disturbance. Valvular disease correlated with reduced expression of the Notch target gene Hey1 in valves of RBPJk heterozygous mice fed the hyperlipidemic diet. Consistent with the in vivo data, Notch signaling inhibition in porcine valve interstitial cells led to downregulation of HEY1 transcription, activation of osteogenic markers, and increased calcified nodule formation.
Conclusions:
We show that Notch signaling disruption via RBPJk heterozygous inactivation results in aortic valve disease. Notch1 heterozygous mice do not show functional impairment, suggesting that additional Notch receptors may be involved in aortic valve homeostasis and disease. Our data establish a genetic mouse model of calcific aortic valve disease and may help to identify a patient population with reduced valvular NOTCH signaling at risk for developing this disease.
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