Literature DB >> 23218838

The explosive growth of small voids in vulnerable cap rupture; cavitation and interfacial debonding.

Natalia Maldonado1, Adreanne Kelly-Arnold, Luis Cardoso, Sheldon Weinbaum.   

Abstract

While it is generally accepted that ruptures in fibrous cap atheromas cause most acute coronary deaths, and that plaque rupture occurs in the fibrous cap at the location where the tissue stress exceeds a certain critical peak circumferential stress, the exact mechanism of rupture initiation remains unclear. We recently reported the presence of multiple microcalcifications (μCalcs) <50 μm diameter embedded within the fibrous cap, μCalcs that could greatly increase cap instability by introducing up to a 5-fold increase in local tissue stress. Here, we explore the hypothesis that, aside from cap thickness, μCalc size and interparticle spacing are principal determinants of cap rupture risk. Also, we propose that cap rupture is initiated near the poles of the μCalcs due to the presence of tiny voids that explosively grow at a critical tissue stress and then propagate across the fibrous cap. We develop a theoretical model based on classic studies in polymeric materials by Gent (1980), which indicates that cavitation as opposed to interfacial debonding is the more likely mechanism for cap rupture produced by μCalcs <65 μm diameter. This analysis suggests that there is a critical μCalc size range, from 5 μm to 65 μm, in which cavitation should be prevalent. This hypothesis for cap rupture is strongly supported by our latest high resolution μCT studies in which we have observed trapped voids in the vicinity of μCalcs within fibrous caps in human coronaries.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 23218838      PMCID: PMC4019735          DOI: 10.1016/j.jbiomech.2012.10.040

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


  19 in total

1.  Micro-CT based analysis of a new paradigm for vulnerable plaque rupture: cellular microcalcifications in fibrous caps.

Authors:  Yuliya Vengrenyuk; Luis Cardoso; Sheldon Weinbaum
Journal:  Mol Cell Biomech       Date:  2008-03

2.  Mechanical stress analysis of a rigid inclusion in distensible material: a model of atherosclerotic calcification and plaque vulnerability.

Authors:  Tetsuya Hoshino; Lori A Chow; Jeffrey J Hsu; Alice A Perlowski; Moeen Abedin; Jonathan Tobis; Yin Tintut; Ajit K Mal; William S Klug; Linda L Demer
Journal:  Am J Physiol Heart Circ Physiol       Date:  2009-06-19       Impact factor: 4.733

3.  Correlation of regional distribution and morphological pattern of calcification at CT coronary artery calcium scoring with non-calcified plaque formation and stenosis.

Authors:  Christian Thilo; Mulugeta Gebregziabher; Florian B Mayer; Peter L Zwerner; Philip Costello; U Joseph Schoepf
Journal:  Eur Radiol       Date:  2009-10-28       Impact factor: 5.315

4.  Influence of plaque configuration and stress distribution on fissuring of coronary atherosclerotic plaques.

Authors:  P D Richardson; M J Davies; G V Born
Journal:  Lancet       Date:  1989-10-21       Impact factor: 79.321

5.  Numerical modeling of stress in stenotic arteries with microcalcifications: a micromechanical approximation.

Authors:  Jonathan F Wenk; Panayiotis Papadopoulos; Tarek I Zohdi
Journal:  J Biomech Eng       Date:  2010-09       Impact factor: 2.097

6.  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

7.  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

8.  Necrotic core thickness and positive arterial remodeling index: emergent biomechanical factors for evaluating the risk of plaque rupture.

Authors:  Jacques Ohayon; Gérard Finet; Ahmed M Gharib; Daniel A Herzka; Philippe Tracqui; Julie Heroux; Gilles Rioufol; Melanie S Kotys; Abdalla Elagha; Roderic I Pettigrew
Journal:  Am J Physiol Heart Circ Physiol       Date:  2008-06-27       Impact factor: 4.733

9.  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

10.  Morphology of exertion-triggered plaque rupture in patients with acute coronary syndrome: an optical coherence tomography study.

Authors:  Atsushi Tanaka; Toshio Imanishi; Hironori Kitabata; Takashi Kubo; Shigeho Takarada; Takashi Tanimoto; Akio Kuroi; Hiroto Tsujioka; Hideyuki Ikejima; Satoshi Ueno; Hideaki Kataiwa; Keishi Okouchi; Manabu Kashiwaghi; Hiroki Matsumoto; Kazushi Takemoto; Nobuo Nakamura; Kumiko Hirata; Masato Mizukoshi; Takashi Akasaka
Journal:  Circulation       Date:  2008-11-17       Impact factor: 29.690

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  20 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.  Revised microcalcification hypothesis for fibrous cap rupture in human coronary arteries.

Authors:  Adreanne Kelly-Arnold; Natalia Maldonado; Damien Laudier; Elena Aikawa; Luis Cardoso; Sheldon Weinbaum
Journal:  Proc Natl Acad Sci U S A       Date:  2013-06-03       Impact factor: 11.205

3.  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

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

Authors:  Luis Cardoso; Adreanne Kelly-Arnold; Natalia Maldonado; Damien Laudier; Sheldon Weinbaum
Journal:  J Biomech       Date:  2014-01-13       Impact factor: 2.712

Review 5.  Extracellular vesicles in cardiovascular homeostasis and disease.

Authors:  Joshua D Hutcheson; Elena Aikawa
Journal:  Curr Opin Cardiol       Date:  2018-05       Impact factor: 2.161

Review 6.  Biomechanics of atherosclerotic coronary plaque: site, stability and in vivo elasticity modeling.

Authors:  Jacques Ohayon; Gérard Finet; Simon Le Floc'h; Guy Cloutier; Ahmed M Gharib; Julie Heroux; Roderic I Pettigrew
Journal:  Ann Biomed Eng       Date:  2013-09-17       Impact factor: 3.934

7.  MicroRNA in cardiovascular calcification: focus on targets and extracellular vesicle delivery mechanisms.

Authors:  Claudia Goettsch; Joshua D Hutcheson; Elena Aikawa
Journal:  Circ Res       Date:  2013-03-29       Impact factor: 17.367

Review 8.  Optical measurement of arterial mechanical properties: from atherosclerotic plaque initiation to rupture.

Authors:  Seemantini K Nadkarni
Journal:  J Biomed Opt       Date:  2013-12       Impact factor: 3.170

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.  Zooming in on the genesis of atherosclerotic plaque microcalcifications.

Authors:  Jessica L Ruiz; Sheldon Weinbaum; Elena Aikawa; Joshua D Hutcheson
Journal:  J Physiol       Date:  2016-05-01       Impact factor: 5.182

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