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Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure

Expanded polytetrafluoroethylene (ePTFE) is promising in biomedical fields such as covered stents and plastic surgery owing to its excellent biocompatibility and mechanical properties. However, ePTFE material prepared by the traditional biaxial stretching process is with thicker middle and thinner s...

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Autores principales: Wang, Gang, Feng, Yusheng, Gao, Caiyun, Zhang, Xu, Wang, Qunsong, Zhang, Jie, Zhang, Hongjie, Wu, Yongqiang, Li, Xin, Wang, Lin, Fu, Ye, Yu, Xiaoye, Zhang, Deyuan, Liu, Jianxiong, Ding, Jiandong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10310521/
https://www.ncbi.nlm.nih.gov/pubmed/37397871
http://dx.doi.org/10.1093/rb/rbad056
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author Wang, Gang
Feng, Yusheng
Gao, Caiyun
Zhang, Xu
Wang, Qunsong
Zhang, Jie
Zhang, Hongjie
Wu, Yongqiang
Li, Xin
Wang, Lin
Fu, Ye
Yu, Xiaoye
Zhang, Deyuan
Liu, Jianxiong
Ding, Jiandong
author_facet Wang, Gang
Feng, Yusheng
Gao, Caiyun
Zhang, Xu
Wang, Qunsong
Zhang, Jie
Zhang, Hongjie
Wu, Yongqiang
Li, Xin
Wang, Lin
Fu, Ye
Yu, Xiaoye
Zhang, Deyuan
Liu, Jianxiong
Ding, Jiandong
author_sort Wang, Gang
collection PubMed
description Expanded polytetrafluoroethylene (ePTFE) is promising in biomedical fields such as covered stents and plastic surgery owing to its excellent biocompatibility and mechanical properties. However, ePTFE material prepared by the traditional biaxial stretching process is with thicker middle and thinner sides due to the bowing effect, which poses a major problem in industrial-scale fabrication. To solve this problem, we design an olive-shaped winding roller to provide the middle part of the ePTFE tape with a greater longitudinal stretching amplitude than the two sides, so as to make up for the excessive longitudinal retraction tendency of the middle part when it is transversely stretched. The as-fabricated ePTFE membrane has, as designed, uniform thickness and node-fibril microstructure. In addition, we examine the effects of mass ratio of lubricant to PTFE powder, biaxial stretching ratio and sintering temperature on the performance of the resultant ePTFE membranes. Particularly, the relation between the internal microstructure of the ePTFE membrane and its mechanical properties is revealed. Besides stable mechanical properties, the sintered ePTFE membrane exhibits satisfactory biological properties. We make a series of biological assessments including in vitro hemolysis, coagulation, bacterial reverse mutation and in vivo thrombosis, intracutaneous reactivity test, pyrogen test and subchronic systemic toxicity test; all of the results meet the relevant international standards. The muscle implantation of the sintered ePTFE membrane into rabbits indicates acceptable inflammatory reactions of our sintered ePTFE membrane fabricated on industrial scale. Such a medical-grade raw material with the unique physical form and condensed-state microstructure is expected to afford an inert biomaterial potentially for stent-graft membrane.
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spelling pubmed-103105212023-07-01 Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure Wang, Gang Feng, Yusheng Gao, Caiyun Zhang, Xu Wang, Qunsong Zhang, Jie Zhang, Hongjie Wu, Yongqiang Li, Xin Wang, Lin Fu, Ye Yu, Xiaoye Zhang, Deyuan Liu, Jianxiong Ding, Jiandong Regen Biomater Research Article Expanded polytetrafluoroethylene (ePTFE) is promising in biomedical fields such as covered stents and plastic surgery owing to its excellent biocompatibility and mechanical properties. However, ePTFE material prepared by the traditional biaxial stretching process is with thicker middle and thinner sides due to the bowing effect, which poses a major problem in industrial-scale fabrication. To solve this problem, we design an olive-shaped winding roller to provide the middle part of the ePTFE tape with a greater longitudinal stretching amplitude than the two sides, so as to make up for the excessive longitudinal retraction tendency of the middle part when it is transversely stretched. The as-fabricated ePTFE membrane has, as designed, uniform thickness and node-fibril microstructure. In addition, we examine the effects of mass ratio of lubricant to PTFE powder, biaxial stretching ratio and sintering temperature on the performance of the resultant ePTFE membranes. Particularly, the relation between the internal microstructure of the ePTFE membrane and its mechanical properties is revealed. Besides stable mechanical properties, the sintered ePTFE membrane exhibits satisfactory biological properties. We make a series of biological assessments including in vitro hemolysis, coagulation, bacterial reverse mutation and in vivo thrombosis, intracutaneous reactivity test, pyrogen test and subchronic systemic toxicity test; all of the results meet the relevant international standards. The muscle implantation of the sintered ePTFE membrane into rabbits indicates acceptable inflammatory reactions of our sintered ePTFE membrane fabricated on industrial scale. Such a medical-grade raw material with the unique physical form and condensed-state microstructure is expected to afford an inert biomaterial potentially for stent-graft membrane. Oxford University Press 2023-06-02 /pmc/articles/PMC10310521/ /pubmed/37397871 http://dx.doi.org/10.1093/rb/rbad056 Text en © The Author(s) 2023. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Wang, Gang
Feng, Yusheng
Gao, Caiyun
Zhang, Xu
Wang, Qunsong
Zhang, Jie
Zhang, Hongjie
Wu, Yongqiang
Li, Xin
Wang, Lin
Fu, Ye
Yu, Xiaoye
Zhang, Deyuan
Liu, Jianxiong
Ding, Jiandong
Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title_full Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title_fullStr Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title_full_unstemmed Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title_short Biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical ePTFE membrane with node-fibril microstructure
title_sort biaxial stretching of polytetrafluoroethylene in industrial scale to fabricate medical eptfe membrane with node-fibril microstructure
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10310521/
https://www.ncbi.nlm.nih.gov/pubmed/37397871
http://dx.doi.org/10.1093/rb/rbad056
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