Literature DB >> 24503048

Effect of tissue properties, shape and orientation of microcalcifications on vulnerable cap stability using different hyperelastic constitutive models.

Luis Cardoso1, Adreanne Kelly-Arnold2, Natalia Maldonado2, Damien Laudier2, Sheldon Weinbaum3.   

Abstract

Approximately half of all cardiovascular deaths associated with acute coronary syndrome occur when the thin fibrous cap tissue overlying the necrotic core in a coronary vessel is torn, ripped or fissured under the action of high blood pressure. From a biomechanics point of view, the rupture of an atheroma is due to increased mechanical stresses in the lesion, in which the ultimate stress (i.e. peak circumferential stress (PCS) at failure) of the tissue is exceeded. Several factors including the cap thickness, morphology, residual stresses and tissue composition of the atheroma have been shown to affect the PCS. Also important, we recently demonstrated that microcalcifications (μCalcs>5 µm are a common feature in human atheroma caps, which behave as local stress concentrators, increasing the local tissue stress by at least a factor of two surpassing the ultimate stress threshold for cap tissue rupture. In the present study, we used both idealized µCalcs with spherical shape and actual µCalcs from human coronary atherosclerotic caps, to determine their effect on increasing the circumferential stress in the fibroatheroma cap using different hyperelastic constitutive models. We have found that the stress concentration factor (SCF) produced by μCalcs in the fibroatheroma cap is affected by the material tissue properties, μCalcs spacing, aspect ratio and their alignment relative to the tensile axis of the cap.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Fibrous cap rupture; Micro computed tomography; Microcalcifications; Vulnerable plaque

Mesh:

Year:  2014        PMID: 24503048      PMCID: PMC4019736          DOI: 10.1016/j.jbiomech.2014.01.010

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  24 in total

1.  Determination of layer-specific mechanical properties of human coronary arteries with nonatherosclerotic intimal thickening and related constitutive modeling.

Authors:  Gerhard A Holzapfel; Gerhard Sommer; Christian T Gasser; Peter Regitnig
Journal:  Am J Physiol Heart Circ Physiol       Date:  2005-07-08       Impact factor: 4.733

Review 2.  Plaque fissuring--the cause of acute myocardial infarction, sudden ischaemic death, and crescendo angina.

Authors:  M J Davies; A C Thomas
Journal:  Br Heart J       Date:  1985-04

3.  Plaque rupture and sudden death related to exertion in men with coronary artery disease.

Authors:  A P Burke; A Farb; G T Malcom; Y Liang; J E Smialek; R Virmani
Journal:  JAMA       Date:  1999-03-10       Impact factor: 56.272

4.  Coronary risk factors and plaque morphology in men with coronary disease who died suddenly.

Authors:  A P Burke; A Farb; G T Malcom; Y H Liang; J Smialek; R Virmani
Journal:  N Engl J Med       Date:  1997-05-01       Impact factor: 91.245

5.  The pathological basis and microanatomy of occlusive thrombus formation in human coronary arteries.

Authors:  M J Davies; T Thomas
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  1981-08-18       Impact factor: 6.237

6.  Morphologic and angiographic features of coronary plaque rupture detected by intravascular ultrasound.

Authors:  Akiko Maehara; Gary S Mintz; Anh B Bui; Olga R Walter; Marco T Castagna; Daniel Canos; August D Pichard; Lowell F Satler; Ron Waksman; William O Suddath; John R Laird; Kenneth M Kent; Neil J Weissman
Journal:  J Am Coll Cardiol       Date:  2002-09-04       Impact factor: 24.094

7.  Distribution of circumferential stress in ruptured and stable atherosclerotic lesions. A structural analysis with histopathological correlation.

Authors:  G C Cheng; H M Loree; R D Kamm; M C Fishbein; R T Lee
Journal:  Circulation       Date:  1993-04       Impact factor: 29.690

8.  Biomechanical interaction between cap thickness, lipid core composition and blood pressure in vulnerable coronary plaque: impact on stability or instability.

Authors:  Gérard Finet; Jacques Ohayon; Gilles Rioufol
Journal:  Coron Artery Dis       Date:  2004-02       Impact factor: 1.439

Review 9.  Changing views of the biomechanics of vulnerable plaque rupture: a review.

Authors:  Luis Cardoso; Sheldon Weinbaum
Journal:  Ann Biomed Eng       Date:  2013-07-11       Impact factor: 3.934

Review 10.  Pathology of the thin-cap fibroatheroma: a type of vulnerable plaque.

Authors:  Renu Virmani; Allen P Burke; Frank D Kolodgie; Andrew Farb
Journal:  J Interv Cardiol       Date:  2003-06       Impact factor: 2.279

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  18 in total

1.  Imaging and analysis of microcalcifications and lipid/necrotic core calcification in fibrous cap atheroma.

Authors:  Natalia Maldonado; Adreanne Kelly-Arnold; Damien Laudier; Sheldon Weinbaum; Luis Cardoso
Journal:  Int J Cardiovasc Imaging       Date:  2015-04-03       Impact factor: 2.357

2.  Predictors for target lesion microcalcifications in patients with stable coronary artery disease: an optical coherence tomography study.

Authors:  Sebastian Reith; Andrea Milzi; Rosalia Dettori; Nikolaus Marx; Mathias Burgmaier
Journal:  Clin Res Cardiol       Date:  2018-04-13       Impact factor: 5.460

Review 3.  Microstructure-based biomechanics of coronary arteries in health and disease.

Authors:  Huan Chen; Ghassan S Kassab
Journal:  J Biomech       Date:  2016-03-20       Impact factor: 2.712

4.  Density and morphology of coronary artery calcium for the prediction of cardiovascular events: insights from the Framingham Heart Study.

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Journal:  Eur Radiol       Date:  2019-05-02       Impact factor: 5.315

Review 5.  A Review on Atherosclerotic Biology, Wall Stiffness, Physics of Elasticity, and Its Ultrasound-Based Measurement.

Authors:  Anoop K Patel; Harman S Suri; Jaskaran Singh; Dinesh Kumar; Shoaib Shafique; Andrew Nicolaides; Sanjay K Jain; Luca Saba; Ajay Gupta; John R Laird; Argiris Giannopoulos; Jasjit S Suri
Journal:  Curr Atheroscler Rep       Date:  2016-12       Impact factor: 5.113

6.  Finite element analysis in clinical patients with atherosclerosis.

Authors:  Christopher Noble; Kent D Carlson; Erica Neumann; Bradley Lewis; Dan Dragomir-Daescu; Amir Lerman; Ahmet Erdemir; Melissa D Young
Journal:  J Mech Behav Biomed Mater       Date:  2021-10-30

7.  Effect of macro-calcification on the failure mechanics of intracranial aneurysmal wall tissue.

Authors:  R N Fortunato; A M Robertson; C Sang; X Duan; S Maiti
Journal:  Exp Mech       Date:  2020-09-25       Impact factor: 2.808

8.  Stenting-induced Vasa Vasorum compression and subsequent flow resistance: a finite element study.

Authors:  Andrea Corti; Annalisa De Paolis; John Tarbell; Luis Cardoso
Journal:  Biomech Model Mechanobiol       Date:  2020-08-04

9.  Artery buckling affects the mechanical stress in atherosclerotic plaques.

Authors:  Arnav Sanyal; Hai-Chao Han
Journal:  Biomed Eng Online       Date:  2015-01-09       Impact factor: 2.819

Review 10.  Small entities with large impact: microcalcifications and atherosclerotic plaque vulnerability.

Authors:  Joshua D Hutcheson; Natalia Maldonado; Elena Aikawa
Journal:  Curr Opin Lipidol       Date:  2014-10       Impact factor: 4.776

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