Literature DB >> 34740008

Finite element analysis in clinical patients with atherosclerosis.

Christopher Noble1, Kent D Carlson2, Erica Neumann3, Bradley Lewis4, Dan Dragomir-Daescu2, Amir Lerman1, Ahmet Erdemir3, Melissa D Young5.   

Abstract

Endovascular plaque composition is strongly related to stent strut stress and is responsible for strut fatigue, stent failure, and possible in-stent restenosis. To evaluate the effect of plaque on artery wall resistance to expansion we performed in silico analysis of atherosclerotic vessels. We generated finite element models from in vivo intravascular ultrasound virtual histology images to determine local artery surface stiffness and determined which plaque structures have the greatest influence. We validated the predictive capacity of our modeling approach by testing an atherosclerotic peripheral artery ex vivo with pressure-inflation testing at physiological pressures ranging from 10 to 200 mmHg. For this purpose, the in silico deformation of the arterial wall was compared to that observed ex vivo. We found that calcification had a positive effect on surface stiffness with fibrous plaque and necrotic core having negative effects. Additionally, larger plaque structures demonstrated significantly higher average surface stiffness and calcification located nearer the lumen was also shown to increase surface stiffness. Therefore, more developed plaques will have greater resistance to expansion and higher stent strut stress, with calcification located near the lumen further increasing stress in localized areas. Thus, it may be expected that such plaque structures may increase the likelihood of localized stent strut fracture.
Copyright © 2021 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Atherosclerosis; Finite element analysis; Intravascular ultrasound virtual histology; Pressure-inflation testing; Surface stiffness

Mesh:

Year:  2021        PMID: 34740008      PMCID: PMC8665142          DOI: 10.1016/j.jmbbm.2021.104927

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  24 in total

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6.  Influence of plaque calcifications on coronary stent fracture: a numerical fatigue life analysis including cardiac wall movement.

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7.  Plaque Rupture in Coronary Atherosclerosis Is Associated With Increased Plaque Structural Stress.

Authors:  Charis Costopoulos; Yuan Huang; Adam J Brown; Patrick A Calvert; Stephen P Hoole; Nick E J West; Jonathan H Gillard; Zhongzhao Teng; Martin R Bennett
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8.  SimpleITK Image-Analysis Notebooks: a Collaborative Environment for Education and Reproducible Research.

Authors:  Ziv Yaniv; Bradley C Lowekamp; Hans J Johnson; Richard Beare
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9.  Coronary plaque structural stress is associated with plaque composition and subtype and higher in acute coronary syndrome: the BEACON I (Biomechanical Evaluation of Atheromatous Coronary Arteries) study.

Authors:  Zhongzhao Teng; Adam J Brown; Patrick A Calvert; Richard A Parker; Daniel R Obaid; Yuan Huang; Stephen P Hoole; Nick E J West; Jonathan H Gillard; Martin R Bennett
Journal:  Circ Cardiovasc Imaging       Date:  2014-02-20       Impact factor: 7.792

10.  The influence of computational strategy on prediction of mechanical stress in carotid atherosclerotic plaques: comparison of 2D structure-only, 3D structure-only, one-way and fully coupled fluid-structure interaction analyses.

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Journal:  J Biomech       Date:  2014-01-21       Impact factor: 2.712

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Authors:  Tapan Behl; Sukhbir Singh; Neelam Sharma; Ishrat Zahoor; Ali Albarrati; Mohammed Albratty; Abdulkarim M Meraya; Asim Najmi; Simona Bungau
Journal:  Molecules       Date:  2022-06-09       Impact factor: 4.927

  1 in total

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