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Updated: Aug 25, 2025

Minimally Invasive Transverse Aortic Constriction in Mice
Published on: March 14, 2017
Sclerostin ablation prevents aortic valve stenosis in mice
J Ethan Joll1, Lance A Riley1, Matthew R Bersi1
1Department of Biomedical Engineering, Vanderbilt University, Nashville, Tennessee.
Abstract:
The objective of this study was to test the hypothesis that targeting sclerostin would accelerate the progression of aortic valve stenosis. Sclerostin (mouse gene, Sost) is a secreted glycoprotein that acts as a potent regulator of bone remodeling. Antibody therapy targeting sclerostin is approved for osteoporosis but results from a stage III clinical trial showed multiple off-target cardiovascular effects. Wild-type (WT, Sost+/+) and Sost-gene knockout-expression (Null, Sost-/-) mice were generated and maintained to 12 mo of age on a high-cholesterol diet to induce aortic valve stenosis. Mice were examined by echocardiography, histology, and RNAseq. Immortalized valve interstitial cells were developed from each genotype for in vitro studies. Null mice developed a bone overgrowth phenotype, similar to patients with sclerosteosis. Surprisingly, however, WT mice developed hemodynamic signs of aortic valve stenosis, whereas Null mice were unchanged. WT mice had thicker aortic valve leaflets and higher amounts of α-smooth muscle actin, a marker myofibroblast activation and dystrophic calcification, with very little evidence of Runx2 expression, a marker of osteogenic calcification. RNAseq analysis of aortic roots indicated the HOX family of transcription factors was significantly upregulated in Null mice, and valve interstitial cells from Null animals were enriched with Hoxa1, Hoxb2, and Hoxd3 subtypes with downregulated Hoxa7. In addition, Null valve interstitial cells were shown to be less contractile than their WT counterparts. Contrary to our hypothesis, sclerostin targeting prevented hallmarks of aortic valve stenosis and indicates that targeted antibody treatments for osteoporosis may be beneficial for these patients regarding aortic stenosis.NEW & NOTEWORTHY We have found that genetic ablation of the Sost gene (protein: sclerostin) prevents aortic valve stenosis in aged, Western diet mice. This is a new role for sclerostin in the cardiovascular system. To the knowledge of the authors, this is one of the first studies directly manipulating sclerostin in a cardiovascular disease model and the first to specifically study the aortic valve. We also provide a potential new role for Hox genes in cardiovascular disease, noting pan-Hox upregulation in the aortic roots of sclerostin genetic knockouts. The role of Hox genes in postnatal cardiovascular health and disease is another burgeoning field of study to which this article contributes.
Insights
Targeting sclerostin (Sost) prevented aortic valve stenosis in mice. Genetic ablation of Sost offers a new therapeutic avenue for cardiovascular disease, potentially benefiting osteoporosis patients.
Area of Science:
- Cardiovascular Biology
- Bone Metabolism
- Genetics and Genomics
Background:
- Sclerostin (encoded by the Sost gene) regulates bone remodeling and is targeted for osteoporosis.
- Previous clinical trials indicated potential cardiovascular side effects of sclerostin-targeting therapies.
- Aortic valve stenosis (AVS) is a progressive cardiovascular disease with limited treatment options.
Purpose of the Study:
- To investigate the effect of targeting sclerostin on the progression of aortic valve stenosis.
- To test the hypothesis that sclerostin inhibition accelerates AVS.
- To explore the role of sclerostin in cardiovascular health and disease.
Main Methods:
- Generated and utilized wild-type (WT) and Sost-gene knockout (Null) mice on a high-cholesterol diet to model AVS.
- Assessed AVS progression using echocardiography, histology, and RNA sequencing.
- Investigated valve interstitial cell (VIC) function in vitro.
Main Results:
- Contrary to the hypothesis, Sost knockout mice did not develop AVS, while WT mice showed signs of the disease.
- Null mice exhibited bone overgrowth but were protected from AVS, characterized by less leaflet thickening and myofibroblast activation.
- RNAseq revealed significant upregulation of HOX genes in the aortic roots of Null mice, with altered VIC contractility.
Conclusions:
- Genetic ablation of sclerostin (Sost) prevents the development of aortic valve stenosis in a mouse model.
- Sclerostin plays a previously unrecognized role in cardiovascular pathology, specifically in the aortic valve.
- HOX gene family members may be implicated in cardiovascular disease pathogenesis, warranting further investigation.

