Finite Element Simulation of In-Stent Restenosis with Tissue Growth Model

Jie Cheng, Lucy T. Zhang
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Abstract

In this study, a finite element simulation of in-stent restenosis (ISR) is conducted to simulate the deployment and expansion of a stent in an occluded artery with a contact model and a mechanics-based growth model. A tissue growth model based on the multiplicative decomposition of deformation is applied to investigate the growth of the plaque and artery wall upon the stent’s implantation. Due to the high stresses at the contact points between the stent struts and the tissue, further tissue injury or restenosis is observed. The simulation results show that after the stent deployment, the von Mises stress is significantly larger in the plaque compared to the artery wall, especially in the region that is in contact with the stent. However, the growth of the plaque and artery tends to even out the stress concentration over time. The tissue growth is found to be more significant near the inner wall than the outer layer. A 0.77 mm restenosis is predicted, which agrees with published clinical observations. The features of the artery growth are carefully analyzed, and the underlying mechanism is discussed. This study is the first attempt to apply finite element analysis to artery restenosis, which establishes a framework for predicting ISR’s occurrence and severity. The results also provide insights into understanding the underlying mechanism of in-stent restenosis.
基于组织生长模型的支架内再狭窄有限元模拟
本研究对支架内再狭窄(ISR)进行有限元模拟,采用接触模型和基于力学的生长模型模拟支架在闭塞动脉内的展开和扩张。采用基于变形乘法分解的组织生长模型研究支架植入过程中斑块和动脉壁的生长情况。由于支架支柱和组织之间接触点的高应力,进一步的组织损伤或再狭窄被观察到。模拟结果表明,支架铺开后,斑块内的von Mises应力明显大于动脉壁,尤其是与支架接触的区域。然而,随着时间的推移,斑块和动脉的生长会使压力浓度趋于平衡。发现靠近内壁的组织生长比靠近外层的组织生长更明显。预测再狭窄0.77 mm,这与已发表的临床观察结果一致。仔细分析了动脉生长的特点,并讨论了潜在的机制。本研究首次尝试将有限元分析应用于动脉再狭窄,建立了预测动脉再狭窄发生和严重程度的框架。该结果也为理解支架内再狭窄的潜在机制提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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