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Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model

The Sentry inferior vena cava (IVC) filter is designed to provide temporary protection from pulmonary embolism (PE) and then bioconvert to become incorporated in the vessel wall, leaving a patent IVC lumen. Objective. To evaluate the performance and stages of incorporation of the Sentry IVC filter i...

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Autores principales: Gaines, Peter A., Kolodgie, Frank D., Crowley, Gordon, Horan, Steven, MacDonagh, Megan, McLucas, Emily, Rosenthal, David, Strong, Ashley, Sweet, Michael, Panchal, Deepal K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6077616/
https://www.ncbi.nlm.nih.gov/pubmed/30112213
http://dx.doi.org/10.1155/2018/6981505
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author Gaines, Peter A.
Kolodgie, Frank D.
Crowley, Gordon
Horan, Steven
MacDonagh, Megan
McLucas, Emily
Rosenthal, David
Strong, Ashley
Sweet, Michael
Panchal, Deepal K.
author_facet Gaines, Peter A.
Kolodgie, Frank D.
Crowley, Gordon
Horan, Steven
MacDonagh, Megan
McLucas, Emily
Rosenthal, David
Strong, Ashley
Sweet, Michael
Panchal, Deepal K.
author_sort Gaines, Peter A.
collection PubMed
description The Sentry inferior vena cava (IVC) filter is designed to provide temporary protection from pulmonary embolism (PE) and then bioconvert to become incorporated in the vessel wall, leaving a patent IVC lumen. Objective. To evaluate the performance and stages of incorporation of the Sentry IVC filter in an ovine model. Methods. Twenty-four bioconvertible devices and 1 control retrievable filter were implanted in the infrarenal IVC of 25 sheep, with extensive daily monitoring and intensive imaging. Vessels and devices were analyzed at early (≤98 days, n = 10) and late (180 ± 30 days, n = 14 study devices, 1 control) termination and necropsy time-points. Results. Deployment success was 100% with all devices confirmed in filtering configuration, there were no filter-related complications, and bioconversion was 100% at termination with vessels widely patent. By 98 days for all early-incorporation analysis animals, the stabilizing cylindrical part of the Sentry frame was incorporated in the vessel wall, and the filter arms were retracted. By 180 days for all late-incorporation analysis animals, the filter arms as well as frames were stably incorporated. Conclusions. Through 180 days, there were no filter-related complications, and the study devices were all bioconverted and stably incorporated, leaving all IVCs patent.
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spelling pubmed-60776162018-08-15 Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model Gaines, Peter A. Kolodgie, Frank D. Crowley, Gordon Horan, Steven MacDonagh, Megan McLucas, Emily Rosenthal, David Strong, Ashley Sweet, Michael Panchal, Deepal K. Int J Vasc Med Research Article The Sentry inferior vena cava (IVC) filter is designed to provide temporary protection from pulmonary embolism (PE) and then bioconvert to become incorporated in the vessel wall, leaving a patent IVC lumen. Objective. To evaluate the performance and stages of incorporation of the Sentry IVC filter in an ovine model. Methods. Twenty-four bioconvertible devices and 1 control retrievable filter were implanted in the infrarenal IVC of 25 sheep, with extensive daily monitoring and intensive imaging. Vessels and devices were analyzed at early (≤98 days, n = 10) and late (180 ± 30 days, n = 14 study devices, 1 control) termination and necropsy time-points. Results. Deployment success was 100% with all devices confirmed in filtering configuration, there were no filter-related complications, and bioconversion was 100% at termination with vessels widely patent. By 98 days for all early-incorporation analysis animals, the stabilizing cylindrical part of the Sentry frame was incorporated in the vessel wall, and the filter arms were retracted. By 180 days for all late-incorporation analysis animals, the filter arms as well as frames were stably incorporated. Conclusions. Through 180 days, there were no filter-related complications, and the study devices were all bioconverted and stably incorporated, leaving all IVCs patent. Hindawi 2018-07-19 /pmc/articles/PMC6077616/ /pubmed/30112213 http://dx.doi.org/10.1155/2018/6981505 Text en Copyright © 2018 Peter A. Gaines et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Gaines, Peter A.
Kolodgie, Frank D.
Crowley, Gordon
Horan, Steven
MacDonagh, Megan
McLucas, Emily
Rosenthal, David
Strong, Ashley
Sweet, Michael
Panchal, Deepal K.
Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title_full Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title_fullStr Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title_full_unstemmed Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title_short Sentry Bioconvertible Inferior Vena Cava Filter: Study of Stages of Incorporation in an Experimental Ovine Model
title_sort sentry bioconvertible inferior vena cava filter: study of stages of incorporation in an experimental ovine model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6077616/
https://www.ncbi.nlm.nih.gov/pubmed/30112213
http://dx.doi.org/10.1155/2018/6981505
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