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Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model

OBJECTIVE: Prosthetic grafts are often needed in open vascular procedures. However, the smaller diameter prosthetic grafts (<6 mm) have low patency and often result in complications from infection. Tissue-engineered vascular grafts (TEVGs) are a promising replacement for small diameter prosthetic...

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Autores principales: Matsushita, Hiroshi, Inoue, Takahiro, Abdollahi, Sara, Yeung, Enoch, Ong, Chin Siang, Lui, Cecillia, Pitaktong, Isaree, Nelson, Kevin, Johnson, Jed, Hibino, Narutoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8489245/
https://www.ncbi.nlm.nih.gov/pubmed/34617042
http://dx.doi.org/10.1016/j.jvssci.2020.03.003
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author Matsushita, Hiroshi
Inoue, Takahiro
Abdollahi, Sara
Yeung, Enoch
Ong, Chin Siang
Lui, Cecillia
Pitaktong, Isaree
Nelson, Kevin
Johnson, Jed
Hibino, Narutoshi
author_facet Matsushita, Hiroshi
Inoue, Takahiro
Abdollahi, Sara
Yeung, Enoch
Ong, Chin Siang
Lui, Cecillia
Pitaktong, Isaree
Nelson, Kevin
Johnson, Jed
Hibino, Narutoshi
author_sort Matsushita, Hiroshi
collection PubMed
description OBJECTIVE: Prosthetic grafts are often needed in open vascular procedures. However, the smaller diameter prosthetic grafts (<6 mm) have low patency and often result in complications from infection. Tissue-engineered vascular grafts (TEVGs) are a promising replacement for small diameter prosthetic grafts. TEVGs start as a biodegradable scaffold to promote autologous cell proliferation and functional neotissue regeneration. Owing to the limitations of graft materials; however, most TEVGs are rigid and easily kinked when implanted in limited spaces, which precludes clinical application. We have developed a novel corrugated nanofiber graft to prevent kinking. METHODS: TEVGs with corrugated walls (5-mm internal diameter by 10 cm length) were created by electrospinning a blend of poly-ε-caprolactone and poly(L-lactide-co-caprolactone). The biodegradable grafts were then implanted between the carotid artery and the external jugular vein in a U-shape using an ovine model. TEVGs were implanted on both the left and right side of a sheep (n = 4, grafts = 8). The grafts were explanted 1 month after implantation and inspected with mechanical and histologic analyses. Graft patency was confirmed by measuring graft diameter and blood flow velocity using ultrasound, which was performed on day 4 and every following week after implantation. RESULTS: All sheep survived postoperatively except for one sheep that died of acute heart failure 2 weeks after implantation. The graft patency rate was 87.5% (seven grafts out of eight) with one graft becoming occluded in the early phase after implantation. There was no significant kinking of the grafts. Overall, endothelial cells were observed in the grafts 1 month after the surgeries without graft rupture, calcification, or aneurysmal change. CONCLUSIONS: Our novel corrugated nanofiber vascular graft displayed neotissue formation without kinking in large animal model.
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spelling pubmed-84892452021-10-05 Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model Matsushita, Hiroshi Inoue, Takahiro Abdollahi, Sara Yeung, Enoch Ong, Chin Siang Lui, Cecillia Pitaktong, Isaree Nelson, Kevin Johnson, Jed Hibino, Narutoshi JVS Vasc Sci Basic Reserch Study OBJECTIVE: Prosthetic grafts are often needed in open vascular procedures. However, the smaller diameter prosthetic grafts (<6 mm) have low patency and often result in complications from infection. Tissue-engineered vascular grafts (TEVGs) are a promising replacement for small diameter prosthetic grafts. TEVGs start as a biodegradable scaffold to promote autologous cell proliferation and functional neotissue regeneration. Owing to the limitations of graft materials; however, most TEVGs are rigid and easily kinked when implanted in limited spaces, which precludes clinical application. We have developed a novel corrugated nanofiber graft to prevent kinking. METHODS: TEVGs with corrugated walls (5-mm internal diameter by 10 cm length) were created by electrospinning a blend of poly-ε-caprolactone and poly(L-lactide-co-caprolactone). The biodegradable grafts were then implanted between the carotid artery and the external jugular vein in a U-shape using an ovine model. TEVGs were implanted on both the left and right side of a sheep (n = 4, grafts = 8). The grafts were explanted 1 month after implantation and inspected with mechanical and histologic analyses. Graft patency was confirmed by measuring graft diameter and blood flow velocity using ultrasound, which was performed on day 4 and every following week after implantation. RESULTS: All sheep survived postoperatively except for one sheep that died of acute heart failure 2 weeks after implantation. The graft patency rate was 87.5% (seven grafts out of eight) with one graft becoming occluded in the early phase after implantation. There was no significant kinking of the grafts. Overall, endothelial cells were observed in the grafts 1 month after the surgeries without graft rupture, calcification, or aneurysmal change. CONCLUSIONS: Our novel corrugated nanofiber vascular graft displayed neotissue formation without kinking in large animal model. Elsevier 2020-04-11 /pmc/articles/PMC8489245/ /pubmed/34617042 http://dx.doi.org/10.1016/j.jvssci.2020.03.003 Text en © 2020 by the Society for Vascular Surgery. Published by Elsevier Inc. 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 Basic Reserch Study
Matsushita, Hiroshi
Inoue, Takahiro
Abdollahi, Sara
Yeung, Enoch
Ong, Chin Siang
Lui, Cecillia
Pitaktong, Isaree
Nelson, Kevin
Johnson, Jed
Hibino, Narutoshi
Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title_full Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title_fullStr Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title_full_unstemmed Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title_short Corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
title_sort corrugated nanofiber tissue-engineered vascular graft to prevent kinking for arteriovenous shunts in an ovine model
topic Basic Reserch Study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8489245/
https://www.ncbi.nlm.nih.gov/pubmed/34617042
http://dx.doi.org/10.1016/j.jvssci.2020.03.003
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