Cargando…

Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue

Arterial stiffness is an independent predictor of cardiovascular events. The motion of arterial tissues during the cardiac cycle is important as a mechanical deformation representing vessel elasticity and is related to arterial stiffness. In addition, arterial pulsation is the main source of endogen...

Descripción completa

Detalles Bibliográficos
Autores principales: Makūnaitė, Monika, Jurkonis, Rytis, Lukoševičius, Arūnas, Baranauskas, Mindaugas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8871234/
https://www.ncbi.nlm.nih.gov/pubmed/35204323
http://dx.doi.org/10.3390/diagnostics12020232
_version_ 1784656948278329344
author Makūnaitė, Monika
Jurkonis, Rytis
Lukoševičius, Arūnas
Baranauskas, Mindaugas
author_facet Makūnaitė, Monika
Jurkonis, Rytis
Lukoševičius, Arūnas
Baranauskas, Mindaugas
author_sort Makūnaitė, Monika
collection PubMed
description Arterial stiffness is an independent predictor of cardiovascular events. The motion of arterial tissues during the cardiac cycle is important as a mechanical deformation representing vessel elasticity and is related to arterial stiffness. In addition, arterial pulsation is the main source of endogenous tissue micro-motions currently being studied for tissue elastography. Methods based on artery motion detection are not applied in clinical practice these days, because they must be carefully investigated in silico and in vitro before wide usage in vivo. The purpose of this paper is to propose a dynamic 3D artery model capable of reproducing the biomechanical behavior of human blood vessels surrounded by elastic tissue for endogenous deformation elastography developments and feasibility studies. The framework is based on a 3D model of a pulsating artery surrounded by tissue and simulation of linear scanning by Field II software to generate realistic dynamic RF signals and B-mode ultrasound image sequential data. The model is defined by a spatial distribution of motions, having patient-specific slopes of radial and longitudinal motion components of the artery wall and surrounding tissues. It allows for simulating the quantified mechanical micro-motions in the volume of the model. Acceptable simulation errors calculated between modeled motion patterns and those estimated from simulated RF signals and B-scan images show that this approach is suitable for the development and validation of elastography algorithms based on motion detection.
format Online
Article
Text
id pubmed-8871234
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-88712342022-02-25 Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue Makūnaitė, Monika Jurkonis, Rytis Lukoševičius, Arūnas Baranauskas, Mindaugas Diagnostics (Basel) Article Arterial stiffness is an independent predictor of cardiovascular events. The motion of arterial tissues during the cardiac cycle is important as a mechanical deformation representing vessel elasticity and is related to arterial stiffness. In addition, arterial pulsation is the main source of endogenous tissue micro-motions currently being studied for tissue elastography. Methods based on artery motion detection are not applied in clinical practice these days, because they must be carefully investigated in silico and in vitro before wide usage in vivo. The purpose of this paper is to propose a dynamic 3D artery model capable of reproducing the biomechanical behavior of human blood vessels surrounded by elastic tissue for endogenous deformation elastography developments and feasibility studies. The framework is based on a 3D model of a pulsating artery surrounded by tissue and simulation of linear scanning by Field II software to generate realistic dynamic RF signals and B-mode ultrasound image sequential data. The model is defined by a spatial distribution of motions, having patient-specific slopes of radial and longitudinal motion components of the artery wall and surrounding tissues. It allows for simulating the quantified mechanical micro-motions in the volume of the model. Acceptable simulation errors calculated between modeled motion patterns and those estimated from simulated RF signals and B-scan images show that this approach is suitable for the development and validation of elastography algorithms based on motion detection. MDPI 2022-01-18 /pmc/articles/PMC8871234/ /pubmed/35204323 http://dx.doi.org/10.3390/diagnostics12020232 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Makūnaitė, Monika
Jurkonis, Rytis
Lukoševičius, Arūnas
Baranauskas, Mindaugas
Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title_full Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title_fullStr Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title_full_unstemmed Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title_short Simulation of Ultrasound RF Signals Backscattered from a 3D Model of Pulsating Artery Surrounded by Tissue
title_sort simulation of ultrasound rf signals backscattered from a 3d model of pulsating artery surrounded by tissue
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8871234/
https://www.ncbi.nlm.nih.gov/pubmed/35204323
http://dx.doi.org/10.3390/diagnostics12020232
work_keys_str_mv AT makunaitemonika simulationofultrasoundrfsignalsbackscatteredfroma3dmodelofpulsatingarterysurroundedbytissue
AT jurkonisrytis simulationofultrasoundrfsignalsbackscatteredfroma3dmodelofpulsatingarterysurroundedbytissue
AT lukoseviciusarunas simulationofultrasoundrfsignalsbackscatteredfroma3dmodelofpulsatingarterysurroundedbytissue
AT baranauskasmindaugas simulationofultrasoundrfsignalsbackscatteredfroma3dmodelofpulsatingarterysurroundedbytissue