Literature DB >> 10769410

Vascular mechanics of the coronary artery.

A I Veress1, D G Vince, P M Anderson, J F Cornhill, E E Herderick, J D Klingensmith, B D Kuban, N L Greenberg, J D Thomas.   

Abstract

UNLABELLED: This paper describes our research into the vascular mechanics of the coronary artery and plaque. The three sections describe the determination of arterial mechanical properties using intravascular ultrasound (IVUS), a constitutive relation for the arterial wall, and finite element method (FEM) models of the arterial wall and atheroma.
METHODS: Inflation testing of porcine left anterior descending coronary arteries was conducted. The changes in the vessel geometry were monitored using IVUS, and intracoronary pressure was recorded using a pressure transducer. The creep and quasistatic stress/strain responses were determined. A Standard Linear Solid (SLS) was modified to reproduce the non-linear elastic behavior of the arterial wall. This Standard Non-linear Solid (SNS) was implemented into an axisymetric thick-walled cylinder numerical model. Finite element analysis models were created for five age groups and four levels of stenosis using the Pathobiological Determinants of Atherosclerosis Youth (PDAY) database.
RESULTS: The arteries exhibited non-linear elastic behavior. The total tissue creep strain was epsilon creep = 0.082 +/- 0.018 mm/mm. The numerical model could reproduce both the non-linearity of the porcine data and time dependent behavior of the arterial wall found in the literature with a correlation coefficient of 0.985. Increasing age had a strong positive correlation with the shoulder stress level, (r = 0.95). The 30% stenosis had the highest shoulder stress due to the combination of a fully formed lipid pool and a thin cap.
CONCLUSIONS: Studying the solid mechanics of the arterial wall and the atheroma provide important insights into the mechanisms involved in plaque rupture.

Entities:  

Keywords:  NASA Discipline Cardiopulmonary; NASA Program Biomedical Research and Countermeasures; Non-NASA Center

Mesh:

Year:  2000        PMID: 10769410     DOI: 10.1007/s003920070106

Source DB:  PubMed          Journal:  Z Kardiol        ISSN: 0300-5860


  10 in total

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3.  An inverse method for mechanical characterization of heterogeneous diseased arteries using intravascular imaging.

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4.  A generalized Maxwell model for creep behavior of artery opening angle.

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Review 5.  Structural modelling of the cardiovascular system.

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6.  Efficacy of the Wolverine cutting balloon on a circumferential calcified coronary lesion: Bench test using a three-dimensional printer and computer simulation with the finite element method.

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7.  Finite-element-method (FEM) model generation of time-resolved 3D echocardiographic geometry data for mitral-valve volumetry.

Authors:  Janko F Verhey; Nadia S Nathan; Otto Rienhoff; Ron Kikinis; Fabian Rakebrandt; Michael N D'Ambra
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8.  Feasibility of rapid and automated importation of 3D echocardiographic left ventricular (LV) geometry into a finite element (FEM) analysis model.

Authors:  Janko F Verhey; Nadia S Nathan
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9.  Dynamic Viscoelasticity and Surface Properties of Porcine Left Anterior Descending Coronary Arteries.

Authors:  Hanna E Burton; Jenny M Freij; Daniel M Espino
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Review 10.  ALUminating the Path of Atherosclerosis Progression: Chaos Theory Suggests a Role for Alu Repeats in the Development of Atherosclerotic Vascular Disease.

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  10 in total

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