Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms

Background: Current clinical practice for the assessment of abdominal aortic aneurysms (AAA) is based on vessel diameter and does not account for the multifactorial, heterogeneous remodeling that results in the regional weakening of the aortic wall leading to aortic growth and rupture. The present s...

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Main Authors: Arianna Forneris, Jacob Kennard, Alina Ismaguilova, Robert D. Shepherd, Deborah Studer, Amy Bromley, Randy D. Moore, Kristina D. Rinker, Elena S. Di Martino
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Cardiovascular Medicine
Subjects:
RNA
Online Access:https://www.frontiersin.org/articles/10.3389/fcvm.2021.631790/full
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spelling doaj-b1b525696e5243639d087ef28be9955d2021-02-15T04:29:50ZengFrontiers Media S.A.Frontiers in Cardiovascular Medicine2297-055X2021-02-01810.3389/fcvm.2021.631790631790Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic AneurysmsArianna Forneris0Arianna Forneris1Jacob Kennard2Alina Ismaguilova3Robert D. Shepherd4Deborah Studer5Amy Bromley6Randy D. Moore7Kristina D. Rinker8Kristina D. Rinker9Kristina D. Rinker10Elena S. Di Martino11Elena S. Di Martino12Biomedical Engineering, University of Calgary, Calgary, AB, CanadaDepartment of Civil Engineering, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaDepartment of Pathology and Laboratory Medicine, University of Calgary, Calgary, AB, CanadaDepartment of Surgery, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaDepartment of Chemical and Petroleum Engineering, University of Calgary, Calgary, AB, CanadaDepartment of Physiology and Pharmacology, University of Calgary, Calgary, AB, CanadaBiomedical Engineering, University of Calgary, Calgary, AB, CanadaDepartment of Civil Engineering, University of Calgary, Calgary, AB, CanadaBackground: Current clinical practice for the assessment of abdominal aortic aneurysms (AAA) is based on vessel diameter and does not account for the multifactorial, heterogeneous remodeling that results in the regional weakening of the aortic wall leading to aortic growth and rupture. The present study was conducted to determine correlations between a novel non-invasive surrogate measure of regional aortic weakening and the results from invasive analyses performed on corresponding ex vivo aortic samples. Tissue samples were evaluated to classify local wall weakening and the likelihood of further degeneration based on non-invasive indices.Methods: A combined, image-based fluid dynamic and in-vivo strain analysis approach was used to estimate the Regional Aortic Weakness (RAW) index and assess individual aortas of AAA patients prior to elective surgery. Nine patients were treated with complete aortic resection allowing the systematic collection of tissue samples that were used to determine regional aortic mechanics, microstructure and gene expression by means of mechanical testing, microscopy and transcriptomic analyses.Results: The RAW index was significantly higher for samples exhibiting lower mechanical strength (p = 0.035) and samples classified as low elastin content (p = 0.020). Samples with higher RAW index had the greatest number of genes differentially expressed compared to any constitutive metric. High RAW samples showed a decrease in gene expression for elastin and a down-regulation of pathways responsible for cell movement, reorganization of cytoskeleton, and angiogenesis.Conclusions: This work describes the first AAA index free of assumptions for material properties and accounting for patient-specific mechanical behavior in relation to aneurysm strength. Use of the RAW index captured biomechanical changes linked to the weakening of the aorta and revealed changes in microstructure and gene expression. This approach has the potential to provide an improved tool to aid clinical decision-making in the management of aortic pathology.https://www.frontiersin.org/articles/10.3389/fcvm.2021.631790/fullAbdominal Aortic AneurysmsRNAComputational Fluid Dynamicsthrombusin vivo strain
collection DOAJ
language English
format Article
sources DOAJ
author Arianna Forneris
Arianna Forneris
Jacob Kennard
Alina Ismaguilova
Robert D. Shepherd
Deborah Studer
Amy Bromley
Randy D. Moore
Kristina D. Rinker
Kristina D. Rinker
Kristina D. Rinker
Elena S. Di Martino
Elena S. Di Martino
spellingShingle Arianna Forneris
Arianna Forneris
Jacob Kennard
Alina Ismaguilova
Robert D. Shepherd
Deborah Studer
Amy Bromley
Randy D. Moore
Kristina D. Rinker
Kristina D. Rinker
Kristina D. Rinker
Elena S. Di Martino
Elena S. Di Martino
Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
Frontiers in Cardiovascular Medicine
Abdominal Aortic Aneurysms
RNA
Computational Fluid Dynamics
thrombus
in vivo strain
author_facet Arianna Forneris
Arianna Forneris
Jacob Kennard
Alina Ismaguilova
Robert D. Shepherd
Deborah Studer
Amy Bromley
Randy D. Moore
Kristina D. Rinker
Kristina D. Rinker
Kristina D. Rinker
Elena S. Di Martino
Elena S. Di Martino
author_sort Arianna Forneris
title Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
title_short Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
title_full Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
title_fullStr Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
title_full_unstemmed Linking Aortic Mechanical Properties, Gene Expression and Microstructure: A New Perspective on Regional Weakening in Abdominal Aortic Aneurysms
title_sort linking aortic mechanical properties, gene expression and microstructure: a new perspective on regional weakening in abdominal aortic aneurysms
publisher Frontiers Media S.A.
series Frontiers in Cardiovascular Medicine
issn 2297-055X
publishDate 2021-02-01
description Background: Current clinical practice for the assessment of abdominal aortic aneurysms (AAA) is based on vessel diameter and does not account for the multifactorial, heterogeneous remodeling that results in the regional weakening of the aortic wall leading to aortic growth and rupture. The present study was conducted to determine correlations between a novel non-invasive surrogate measure of regional aortic weakening and the results from invasive analyses performed on corresponding ex vivo aortic samples. Tissue samples were evaluated to classify local wall weakening and the likelihood of further degeneration based on non-invasive indices.Methods: A combined, image-based fluid dynamic and in-vivo strain analysis approach was used to estimate the Regional Aortic Weakness (RAW) index and assess individual aortas of AAA patients prior to elective surgery. Nine patients were treated with complete aortic resection allowing the systematic collection of tissue samples that were used to determine regional aortic mechanics, microstructure and gene expression by means of mechanical testing, microscopy and transcriptomic analyses.Results: The RAW index was significantly higher for samples exhibiting lower mechanical strength (p = 0.035) and samples classified as low elastin content (p = 0.020). Samples with higher RAW index had the greatest number of genes differentially expressed compared to any constitutive metric. High RAW samples showed a decrease in gene expression for elastin and a down-regulation of pathways responsible for cell movement, reorganization of cytoskeleton, and angiogenesis.Conclusions: This work describes the first AAA index free of assumptions for material properties and accounting for patient-specific mechanical behavior in relation to aneurysm strength. Use of the RAW index captured biomechanical changes linked to the weakening of the aorta and revealed changes in microstructure and gene expression. This approach has the potential to provide an improved tool to aid clinical decision-making in the management of aortic pathology.
topic Abdominal Aortic Aneurysms
RNA
Computational Fluid Dynamics
thrombus
in vivo strain
url https://www.frontiersin.org/articles/10.3389/fcvm.2021.631790/full
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