Literature DB >> 22777419

A mechanistic analysis of the role of microcalcifications in atherosclerotic plaque stability: potential implications for plaque rupture.

Natalia Maldonado1, Adreanne Kelly-Arnold, Yuliya Vengrenyuk, Damien Laudier, John T Fallon, Renu Virmani, Luis Cardoso, Sheldon Weinbaum.   

Abstract

The role of microcalcifications (μCalcs) in the biomechanics of vulnerable plaque rupture is examined. Our laboratory previously proposed (Ref. 44), using a very limited tissue sample, that μCalcs embedded in the fibrous cap proper could significantly increase cap instability. This study has been greatly expanded. Ninety-two human coronary arteries containing 62 fibroatheroma were examined using high-resolution microcomputed tomography at 6.7-μm resolution and undecalcified histology with special emphasis on calcified particles <50 μm in diameter. Our results reveal the presence of thousands of μCalcs, the vast majority in lipid pools where they are not dangerous. However, 81 μCalcs were also observed in the fibrous caps of nine of the fibroatheroma. All 81 of these μCalcs were analyzed using three-dimensional finite-element analysis, and the results were used to develop important new clinical criteria for cap stability. These criteria include variation of the Young's modulus of the μCalc and surrounding tissue, μCalc size, and clustering. We found that local tissue stress could be increased fivefold when μCalcs were closely spaced, and the peak circumferential stress in the thinnest nonruptured cap (66 μm) if no μCalcs were present was only 107 kPa, far less than the proposed minimum rupture threshold of 300 kPa. These results and histology suggest that there are numerous μCalcs < 15 μm in the caps, not visible at 6.7-μm resolution, and that our failure to find any nonruptured caps between 30 and 66 μm is a strong indication that many of these caps contained μCalcs.

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Year:  2012        PMID: 22777419      PMCID: PMC3468470          DOI: 10.1152/ajpheart.00036.2012

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  43 in total

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

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Journal:  Lancet       Date:  1989-10-21       Impact factor: 79.321

2.  The impact of calcification on the biomechanical stability of atherosclerotic plaques.

Authors:  H Huang; R Virmani; H Younis; A P Burke; R D Kamm; R T Lee
Journal:  Circulation       Date:  2001-02-27       Impact factor: 29.690

3.  Coronary calcification: insights from sudden coronary death victims.

Authors:  A P Burke; A Taylor; A Farb; G T Malcom; R Virmani
Journal:  Z Kardiol       Date:  2000

4.  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

5.  Intraplaque hemorrhage and progression of coronary atheroma.

Authors:  Frank D Kolodgie; Herman K Gold; Allen P Burke; David R Fowler; Howard S Kruth; Deena K Weber; Andrew Farb; L J Guerrero; Motoya Hayase; Robert Kutys; Jagat Narula; Aloke V Finn; Renu Virmani
Journal:  N Engl J Med       Date:  2003-12-11       Impact factor: 91.245

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

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Journal:  Circulation       Date:  1993-04       Impact factor: 29.690

7.  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

8.  Diffuse calcification in human coronary arteries. Association of osteopontin with atherosclerosis.

Authors:  L A Fitzpatrick; A Severson; W D Edwards; R T Ingram
Journal:  J Clin Invest       Date:  1994-10       Impact factor: 14.808

9.  Effects of fibrous cap thickness on peak circumferential stress in model atherosclerotic vessels.

Authors:  H M Loree; R D Kamm; R G Stringfellow; R T Lee
Journal:  Circ Res       Date:  1992-10       Impact factor: 17.367

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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  77 in total

1.  Fluid Mechanics, Arterial Disease, and Gene Expression.

Authors:  John M Tarbell; Zhong-Dong Shi; Jessilyn Dunn; Hanjoong Jo
Journal:  Annu Rev Fluid Mech       Date:  2014-01       Impact factor: 18.511

2.  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

3.  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

4.  Collagenases and cracks in the plaque.

Authors:  Peter Libby
Journal:  J Clin Invest       Date:  2013-08-01       Impact factor: 14.808

5.  Hydroxyapatite-binding micelles for the detection of vascular calcification in atherosclerosis.

Authors:  Deborah D Chin; Jonathan Wang; Margot Mel de Fontenay; Anastasia Plotkin; Gregory A Magee; Eun Ji Chung
Journal:  J Mater Chem B       Date:  2019-09-25       Impact factor: 6.331

6.  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

7.  Calcium-binding nanoparticles for vascular disease.

Authors:  Deborah D Chin; Sampreeti Chowdhuri; Eun Ji Chung
Journal:  Regen Eng Transl Med       Date:  2018-10-23

8.  Macrophages and intravascular OCT bright spots: a quantitative study.

Authors:  Jennifer E Phipps; Deborah Vela; Taylor Hoyt; David L Halaney; J Jacob Mancuso; L Maximilian Buja; Reto Asmis; Thomas E Milner; Marc D Feldman
Journal:  JACC Cardiovasc Imaging       Date:  2014-11-05

9.  Osteogenic monocytes within the coronary circulation and their association with plaque vulnerability in patients with early atherosclerosis.

Authors:  Julia Collin; Mario Gössl; Yoshiki Matsuo; Rebecca R Cilluffo; Andreas J Flammer; Darrell Loeffler; Ryan J Lennon; Robert D Simari; Daniel B Spoon; Raimund Erbel; Lilach O Lerman; Sundeep Khosla; Amir Lerman
Journal:  Int J Cardiol       Date:  2014-11-26       Impact factor: 4.164

10.  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

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