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Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor

Continuous measurement of vascular and hemodynamic parameters could improve monitoring of disease progression and enable timely clinical decision making and therapy surveillance in patients suffering from cardiovascular diseases. However, no reliable extravascular implantable sensor technology is cu...

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Autores principales: Magkoutas, Konstantinos, Weisskopf, Miriam, Falk, Volkmar, Emmert, Maximilian Y., Meboldt, Mirko, Cesarovic, Nikola, Schmid Daners, Marianne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10264706/
https://www.ncbi.nlm.nih.gov/pubmed/37325404
http://dx.doi.org/10.1016/j.jacbts.2022.12.008
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author Magkoutas, Konstantinos
Weisskopf, Miriam
Falk, Volkmar
Emmert, Maximilian Y.
Meboldt, Mirko
Cesarovic, Nikola
Schmid Daners, Marianne
author_facet Magkoutas, Konstantinos
Weisskopf, Miriam
Falk, Volkmar
Emmert, Maximilian Y.
Meboldt, Mirko
Cesarovic, Nikola
Schmid Daners, Marianne
author_sort Magkoutas, Konstantinos
collection PubMed
description Continuous measurement of vascular and hemodynamic parameters could improve monitoring of disease progression and enable timely clinical decision making and therapy surveillance in patients suffering from cardiovascular diseases. However, no reliable extravascular implantable sensor technology is currently available. Here, we report the design, characterization, and validation of an extravascular, magnetic flux sensing device capable of capturing the waveforms of the arterial wall diameter, arterial circumferential strain, and arterial pressure without restricting the arterial wall. The implantable sensing device, comprising a magnet and a magnetic flux sensing assembly, both encapsulated in biocompatible structures, has shown to be robust, with temperature and cyclic-loading stability. Continuous and accurate monitoring of arterial blood pressure and vascular properties was demonstrated with the proposed sensor in vitro with a silicone artery model and validated in vivo in a porcine model mimicking physiologic and pathologic hemodynamic conditions. The captured waveforms were further used to deduce the respiration frequency, the duration of the cardiac systolic phase, and the pulse wave velocity. The findings of this study not only suggest that the proposed sensing technology is a promising platform for accurate monitoring of arterial blood pressure and vascular properties, but also highlight the necessary changes in the technology and the implantation procedure to allow the translation of the sensing device in the clinical setting.
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spelling pubmed-102647062023-06-15 Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor Magkoutas, Konstantinos Weisskopf, Miriam Falk, Volkmar Emmert, Maximilian Y. Meboldt, Mirko Cesarovic, Nikola Schmid Daners, Marianne JACC Basic Transl Sci Original Research - Novel Translational Methods Continuous measurement of vascular and hemodynamic parameters could improve monitoring of disease progression and enable timely clinical decision making and therapy surveillance in patients suffering from cardiovascular diseases. However, no reliable extravascular implantable sensor technology is currently available. Here, we report the design, characterization, and validation of an extravascular, magnetic flux sensing device capable of capturing the waveforms of the arterial wall diameter, arterial circumferential strain, and arterial pressure without restricting the arterial wall. The implantable sensing device, comprising a magnet and a magnetic flux sensing assembly, both encapsulated in biocompatible structures, has shown to be robust, with temperature and cyclic-loading stability. Continuous and accurate monitoring of arterial blood pressure and vascular properties was demonstrated with the proposed sensor in vitro with a silicone artery model and validated in vivo in a porcine model mimicking physiologic and pathologic hemodynamic conditions. The captured waveforms were further used to deduce the respiration frequency, the duration of the cardiac systolic phase, and the pulse wave velocity. The findings of this study not only suggest that the proposed sensing technology is a promising platform for accurate monitoring of arterial blood pressure and vascular properties, but also highlight the necessary changes in the technology and the implantation procedure to allow the translation of the sensing device in the clinical setting. Elsevier 2023-05-03 /pmc/articles/PMC10264706/ /pubmed/37325404 http://dx.doi.org/10.1016/j.jacbts.2022.12.008 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research - Novel Translational Methods
Magkoutas, Konstantinos
Weisskopf, Miriam
Falk, Volkmar
Emmert, Maximilian Y.
Meboldt, Mirko
Cesarovic, Nikola
Schmid Daners, Marianne
Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title_full Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title_fullStr Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title_full_unstemmed Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title_short Continuous Monitoring of Blood Pressure and Vascular Hemodynamic Properties With Miniature Extravascular Hall-Based Magnetic Sensor
title_sort continuous monitoring of blood pressure and vascular hemodynamic properties with miniature extravascular hall-based magnetic sensor
topic Original Research - Novel Translational Methods
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10264706/
https://www.ncbi.nlm.nih.gov/pubmed/37325404
http://dx.doi.org/10.1016/j.jacbts.2022.12.008
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