Literature DB >> 19449964

3D MRI-based anisotropic FSI models with cyclic bending for human coronary atherosclerotic plaque mechanical analysis.

Dalin Tang1, Chun Yang, Shunichi Kobayashi, Jie Zheng, Pamela K Woodard, Zhongzhao Teng, Kristen Billiar, Richard Bach, David N Ku.   

Abstract

Heart attack and stroke are often caused by atherosclerotic plaque rupture, which happens without warning most of the time. Magnetic resonance imaging (MRI)-based atherosclerotic plaque models with fluid-structure interactions (FSIs) have been introduced to perform flow and stress/strain analysis and identify possible mechanical and morphological indices for accurate plaque vulnerability assessment. For coronary arteries, cyclic bending associated with heart motion and anisotropy of the vessel walls may have significant influence on flow and stress/strain distributions in the plaque. FSI models with cyclic bending and anisotropic vessel properties for coronary plaques are lacking in the current literature. In this paper, cyclic bending and anisotropic vessel properties were added to 3D FSI coronary plaque models so that the models would be more realistic for more accurate computational flow and stress/strain predictions. Six computational models using one ex vivo MRI human coronary plaque specimen data were constructed to assess the effects of cyclic bending, anisotropic vessel properties, pulsating pressure, plaque structure, and axial stretch on plaque stress/strain distributions. Our results indicate that cyclic bending and anisotropic properties may cause 50-800% increase in maximum principal stress (Stress-P1) values at selected locations. The stress increase varies with location and is higher when bending is coupled with axial stretch, nonsmooth plaque structure, and resonant pressure conditions (zero phase angle shift). Effects of cyclic bending on flow behaviors are more modest (9.8% decrease in maximum velocity, 2.5% decrease in flow rate, 15% increase in maximum flow shear stress). Inclusion of cyclic bending, anisotropic vessel material properties, accurate plaque structure, and axial stretch in computational FSI models should lead to a considerable improvement of accuracy of computational stress/strain predictions for coronary plaque vulnerability assessment. Further studies incorporating additional mechanical property data and in vivo MRI data are needed to obtain more complete and accurate knowledge about flow and stress/strain behaviors in coronary plaques and to identify critical indicators for better plaque assessment and possible rupture predictions.

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Year:  2009        PMID: 19449964      PMCID: PMC2692061          DOI: 10.1115/1.3127253

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  34 in total

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5.  Association of coronary plaque rupture and atherosclerotic inflammation.

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Journal:  J Pathol       Date:  1997-01       Impact factor: 7.996

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7.  3D MRI-based multicomponent FSI models for atherosclerotic plaques.

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Journal:  J Biomech Eng       Date:  2010-03       Impact factor: 2.097

2.  Stability of carotid artery under steady-state and pulsatile blood flow: a fluid-structure interaction study.

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3.  In vivo serial MRI-based models and statistical methods to quantify sensitivity and specificity of mechanical predictors for carotid plaque rupture: location and beyond.

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Review 7.  Image-based modeling for better understanding and assessment of atherosclerotic plaque progression and vulnerability: data, modeling, validation, uncertainty and predictions.

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8.  Assessment of superficial coronary vessel wall deformation and stress: validation of in silico models and human coronary arteries in vivo.

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9.  Simultaneous evaluation of plaque stability and ischemic potential of coronary lesions in a fluid-structure interaction analysis.

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10.  Sites of rupture in human atherosclerotic carotid plaques are associated with high structural stresses: an in vivo MRI-based 3D fluid-structure interaction study.

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Journal:  Stroke       Date:  2009-07-23       Impact factor: 7.914

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