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Updated: Jul 21, 2025

A Murine Model of Stent Implantation in the Carotid Artery for the Study of Restenosis
Published on: May 14, 2013
Load-sharing characteristics of stenting and post-dilation in heavily calcified coronary artery
Pengfei Dong1, Jose Colmenarez1, Juhwan Lee2
1Florida Institute of Technology.
Insights
Stenting in calcified arteries shows a dog bone shape, unlike non-calcified ones. Higher inflation pressure improves stent expansion in calcified lesions, supporting high-pressure balloon use.
Area of Science:
- Cardiovascular research
- Biomedical engineering
- Medical device technology
Background:
- Stenting is crucial for treating coronary artery disease.
- Calcified lesions pose unique challenges for stent deployment and efficacy.
- Understanding mechanical forces during stenting is vital for optimal outcomes.
Conclusions:
- Stent deployment mechanics differ significantly between non-calcified and heavily calcified coronary arteries.
- Higher inflation pressures are effective in improving stent expansion in calcified lesions, especially when a dog-bone shape is observed.
- Findings support the use of high-pressure balloons for post-dilation in calcified lesions, balancing efficacy with the risk of balloon rupture.
Abstract:
In this work, stenting in non-calcified and heavily calcified coronary arteries was quantified in terms of diameter-pressure relationships and load transfer from the balloon to the artery. The efficacy of post-dilation in non-calcified and heavily calcified coronary arteries was also characterized in terms of load sharing and the changes in tissue mechanics. Our results have shown that stent expansion exhibits a cylindrical shape in non-calcified lesions, while it exhibits a dog bone shape in heavily calcified lesions. Load-sharing analysis has shown that only a small portion of the pressure load (1.4 N, 0.8% of total pressure load) was transferred to the non-calcified lesion, while a large amount of the pressure load (19 N, 12%) was transferred to the heavily calcified lesion. In addition, the increasing inflation pressure (from 10 to 20 atm) can effectively increase the minimal lumen diameter (from 1.48 mm to 2.82 mm) of the heavily calcified lesion, the stress (from 1.5 MPa to 8.4 MPa) the strain energy in the calcification (1.77 mJ to 26.5 mJ), which associated with the potential of calcification fracture. Results indicated that increasing inflation pressure can be an effective way to improve the stent expansion if a dog bone shape of the stenting profile is observed. Considering the risk of a balloon burst, our results support the design and application of the high-pressure balloon for post-dilation.
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