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Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance

Biodegradable stents are promising treatments for many diseases, e.g., coronary artery disease, urethral diseases, tracheal diseases, and esophageal strictures. The mechanical properties of biodegradable stent materials play a key role in the safety and efficacy of treatment. In particular, insuffic...

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Autores principales: Bezrouk, Ales, Hosszu, Tomas, Hromadko, Ludek, Olmrova Zmrhalova, Zuzana, Kopecek, Martin, Smutny, Martin, Selke Krulichova, Iva, Macak, Jan M., Kremlacek, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7343154/
https://www.ncbi.nlm.nih.gov/pubmed/32639989
http://dx.doi.org/10.1371/journal.pone.0235842
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author Bezrouk, Ales
Hosszu, Tomas
Hromadko, Ludek
Olmrova Zmrhalova, Zuzana
Kopecek, Martin
Smutny, Martin
Selke Krulichova, Iva
Macak, Jan M.
Kremlacek, Jan
author_facet Bezrouk, Ales
Hosszu, Tomas
Hromadko, Ludek
Olmrova Zmrhalova, Zuzana
Kopecek, Martin
Smutny, Martin
Selke Krulichova, Iva
Macak, Jan M.
Kremlacek, Jan
author_sort Bezrouk, Ales
collection PubMed
description Biodegradable stents are promising treatments for many diseases, e.g., coronary artery disease, urethral diseases, tracheal diseases, and esophageal strictures. The mechanical properties of biodegradable stent materials play a key role in the safety and efficacy of treatment. In particular, insufficient creep resistance of the stent material could result in premature stent collapse or narrowing. Commercially available biodegradable self-expandable SX-ELLA stents made of polydioxanone monofilament were tested. A new, simple, and affordable method to measure the shear modulus of tiny viscoelastic wires is presented. The important mechanical parameters of the polydioxanone filament were obtained: the median Young’s modulus was [Image: see text] = 958 (922, 974) MPa and the shear modulus was [Image: see text] = 357 (185, 387) MPa, resulting in a Poisson’s ratio of ν = 0.34. The SX-ELLA stents exhibited significant force relaxation due to the stress relaxation of the polydioxanone monofilament, approximately 19% and 36% 10 min and 48 h after stent application, respectively. However, these results were expected, and the manufacturer and implanting clinician should be aware of the known behavior of these biodegradable materials. If possible, a biodegradable stent should be designed considering therapeutic force rather than initial force. Additionally, new and more advanced biodegradable shape-memory polymers should be considered for future study and use.
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spelling pubmed-73431542020-07-17 Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance Bezrouk, Ales Hosszu, Tomas Hromadko, Ludek Olmrova Zmrhalova, Zuzana Kopecek, Martin Smutny, Martin Selke Krulichova, Iva Macak, Jan M. Kremlacek, Jan PLoS One Research Article Biodegradable stents are promising treatments for many diseases, e.g., coronary artery disease, urethral diseases, tracheal diseases, and esophageal strictures. The mechanical properties of biodegradable stent materials play a key role in the safety and efficacy of treatment. In particular, insufficient creep resistance of the stent material could result in premature stent collapse or narrowing. Commercially available biodegradable self-expandable SX-ELLA stents made of polydioxanone monofilament were tested. A new, simple, and affordable method to measure the shear modulus of tiny viscoelastic wires is presented. The important mechanical parameters of the polydioxanone filament were obtained: the median Young’s modulus was [Image: see text] = 958 (922, 974) MPa and the shear modulus was [Image: see text] = 357 (185, 387) MPa, resulting in a Poisson’s ratio of ν = 0.34. The SX-ELLA stents exhibited significant force relaxation due to the stress relaxation of the polydioxanone monofilament, approximately 19% and 36% 10 min and 48 h after stent application, respectively. However, these results were expected, and the manufacturer and implanting clinician should be aware of the known behavior of these biodegradable materials. If possible, a biodegradable stent should be designed considering therapeutic force rather than initial force. Additionally, new and more advanced biodegradable shape-memory polymers should be considered for future study and use. Public Library of Science 2020-07-08 /pmc/articles/PMC7343154/ /pubmed/32639989 http://dx.doi.org/10.1371/journal.pone.0235842 Text en © 2020 Bezrouk et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Bezrouk, Ales
Hosszu, Tomas
Hromadko, Ludek
Olmrova Zmrhalova, Zuzana
Kopecek, Martin
Smutny, Martin
Selke Krulichova, Iva
Macak, Jan M.
Kremlacek, Jan
Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title_full Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title_fullStr Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title_full_unstemmed Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title_short Mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: In vitro force relaxation and its clinical relevance
title_sort mechanical properties of a biodegradable self-expandable polydioxanone monofilament stent: in vitro force relaxation and its clinical relevance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7343154/
https://www.ncbi.nlm.nih.gov/pubmed/32639989
http://dx.doi.org/10.1371/journal.pone.0235842
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