Cargando…

3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations

Rapid formation of innovative, inexpensive, personalized, and quickly reproducible artery bioresorbable stents (BRSs) is significantly important for treating dangerous and sometimes deadly cerebrovascular disorders. It is greatly challenging to give BRSs excellent mechanical properties, biocompatibi...

Descripción completa

Detalles Bibliográficos
Autores principales: Lu, Junlin, Hu, Xulin, Yuan, Tianyu, Cao, Jianfei, Zhao, Yuanli, Xiong, Chengdong, Li, Kainan, Ye, Xun, Xu, Tao, Zhao, Jizong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103802/
https://www.ncbi.nlm.nih.gov/pubmed/35566924
http://dx.doi.org/10.3390/polym14091755
_version_ 1784707639277518848
author Lu, Junlin
Hu, Xulin
Yuan, Tianyu
Cao, Jianfei
Zhao, Yuanli
Xiong, Chengdong
Li, Kainan
Ye, Xun
Xu, Tao
Zhao, Jizong
author_facet Lu, Junlin
Hu, Xulin
Yuan, Tianyu
Cao, Jianfei
Zhao, Yuanli
Xiong, Chengdong
Li, Kainan
Ye, Xun
Xu, Tao
Zhao, Jizong
author_sort Lu, Junlin
collection PubMed
description Rapid formation of innovative, inexpensive, personalized, and quickly reproducible artery bioresorbable stents (BRSs) is significantly important for treating dangerous and sometimes deadly cerebrovascular disorders. It is greatly challenging to give BRSs excellent mechanical properties, biocompatibility, and bioabsorbability. The current BRSs, which are mostly fabricated from poly-l-lactide (PLLA), are usually applied to coronary revascularization but may not be suitable for cerebrovascular revascularization. Here, novel 3D-printed BRSs for cerebrovascular disease enabling anti-stenosis and gradually disappearing after vessel endothelialization are designed and fabricated by combining biocompatible poly (p-dioxanone) (PPDO) and 3D printing technology for the first time. We can control the strut thickness and vessel coverage of BRSs by adjusting the printing parameters to make the size of BRSs suitable for small-diameter vascular use. We added bis-(2,6-diisopropylphenyl) carbodiimide (commercial name: stabaxol(®)-1) to PPDO to improve its hydrolytic stability without affecting its mechanical properties and biocompatibility. In vitro cell experiments confirmed that endothelial cells can be conveniently seeded and attached to the BRSs and subsequently demonstrated good proliferation ability. Owing to the excellent mechanical properties of the monofilaments fabricated by the PPDO, the 3D-printed BRSs with PPDO monofilaments support desirable flexibility, therefore offering a novel BRS application in the vascular disorders field.
format Online
Article
Text
id pubmed-9103802
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-91038022022-05-14 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations Lu, Junlin Hu, Xulin Yuan, Tianyu Cao, Jianfei Zhao, Yuanli Xiong, Chengdong Li, Kainan Ye, Xun Xu, Tao Zhao, Jizong Polymers (Basel) Article Rapid formation of innovative, inexpensive, personalized, and quickly reproducible artery bioresorbable stents (BRSs) is significantly important for treating dangerous and sometimes deadly cerebrovascular disorders. It is greatly challenging to give BRSs excellent mechanical properties, biocompatibility, and bioabsorbability. The current BRSs, which are mostly fabricated from poly-l-lactide (PLLA), are usually applied to coronary revascularization but may not be suitable for cerebrovascular revascularization. Here, novel 3D-printed BRSs for cerebrovascular disease enabling anti-stenosis and gradually disappearing after vessel endothelialization are designed and fabricated by combining biocompatible poly (p-dioxanone) (PPDO) and 3D printing technology for the first time. We can control the strut thickness and vessel coverage of BRSs by adjusting the printing parameters to make the size of BRSs suitable for small-diameter vascular use. We added bis-(2,6-diisopropylphenyl) carbodiimide (commercial name: stabaxol(®)-1) to PPDO to improve its hydrolytic stability without affecting its mechanical properties and biocompatibility. In vitro cell experiments confirmed that endothelial cells can be conveniently seeded and attached to the BRSs and subsequently demonstrated good proliferation ability. Owing to the excellent mechanical properties of the monofilaments fabricated by the PPDO, the 3D-printed BRSs with PPDO monofilaments support desirable flexibility, therefore offering a novel BRS application in the vascular disorders field. MDPI 2022-04-26 /pmc/articles/PMC9103802/ /pubmed/35566924 http://dx.doi.org/10.3390/polym14091755 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Junlin
Hu, Xulin
Yuan, Tianyu
Cao, Jianfei
Zhao, Yuanli
Xiong, Chengdong
Li, Kainan
Ye, Xun
Xu, Tao
Zhao, Jizong
3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title_full 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title_fullStr 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title_full_unstemmed 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title_short 3D-Printed Poly (P-Dioxanone) Stent for Endovascular Application: In Vitro Evaluations
title_sort 3d-printed poly (p-dioxanone) stent for endovascular application: in vitro evaluations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103802/
https://www.ncbi.nlm.nih.gov/pubmed/35566924
http://dx.doi.org/10.3390/polym14091755
work_keys_str_mv AT lujunlin 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT huxulin 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT yuantianyu 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT caojianfei 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT zhaoyuanli 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT xiongchengdong 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT likainan 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT yexun 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT xutao 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations
AT zhaojizong 3dprintedpolypdioxanonestentforendovascularapplicationinvitroevaluations