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Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels

Currently, 3D-bioprinting technique has emerged as a promising strategy to offer native-like tracheal substitutes for segmental trachea reconstruction. However, there has been very limited breakthrough in tracheal repair using 3D-bioprinted biomimetic trachea owing to the lack of ideal bioinks, the...

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Autores principales: Sun, Yuyan, Huo, Yingying, Ran, Xinyue, Chen, Hongying, Pan, Qingqing, Chen, Yujie, Zhang, Ying, Ren, Wenjie, Wang, Xiaoyun, Zhou, Guangdong, Hua, Yujie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10562117/
https://www.ncbi.nlm.nih.gov/pubmed/37818289
http://dx.doi.org/10.1016/j.bioactmat.2023.09.011
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author Sun, Yuyan
Huo, Yingying
Ran, Xinyue
Chen, Hongying
Pan, Qingqing
Chen, Yujie
Zhang, Ying
Ren, Wenjie
Wang, Xiaoyun
Zhou, Guangdong
Hua, Yujie
author_facet Sun, Yuyan
Huo, Yingying
Ran, Xinyue
Chen, Hongying
Pan, Qingqing
Chen, Yujie
Zhang, Ying
Ren, Wenjie
Wang, Xiaoyun
Zhou, Guangdong
Hua, Yujie
author_sort Sun, Yuyan
collection PubMed
description Currently, 3D-bioprinting technique has emerged as a promising strategy to offer native-like tracheal substitutes for segmental trachea reconstruction. However, there has been very limited breakthrough in tracheal repair using 3D-bioprinted biomimetic trachea owing to the lack of ideal bioinks, the requirement for precise structural biomimicking, and the complexity of multi-step surgical procedures by mean of intramuscular pre-implantation. Herein, we propose a one-step surgical technique, namely direct end-to-end anastomosis using C-shape 3D-bioprinted biomimetic trachea, for segmental trachea defect repair. First, two types of tissue-specific matrix hydrogels were exploited to provide mechanical and biological microenvironment conducive to the specific growth ways of cartilage and fibrous tissue respectively. In contrast to our previous O-shape tracheal design, the tubular structure of alternating C-shape cartilage rings and connecting vascularized-fibrous-tissue rings was meticulously designed for rapid 3D-bioprinting of tracheal constructs with optimal printing paths and models. Furthermore, in vivo trachea regeneration in nude mice showed satisfactory mechanical adaptability and efficient physiological regeneration. Finally, in situ segmental trachea reconstruction by direct end-to-end anastomosis in rabbits was successfully achieved using 3D-bioprinted C-shape biomimetic trachea. This study demonstrates the potential of advanced 3D-bioprinting for instant and efficient repair of segmental trachea defects.
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spelling pubmed-105621172023-10-10 Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels Sun, Yuyan Huo, Yingying Ran, Xinyue Chen, Hongying Pan, Qingqing Chen, Yujie Zhang, Ying Ren, Wenjie Wang, Xiaoyun Zhou, Guangdong Hua, Yujie Bioact Mater Article Currently, 3D-bioprinting technique has emerged as a promising strategy to offer native-like tracheal substitutes for segmental trachea reconstruction. However, there has been very limited breakthrough in tracheal repair using 3D-bioprinted biomimetic trachea owing to the lack of ideal bioinks, the requirement for precise structural biomimicking, and the complexity of multi-step surgical procedures by mean of intramuscular pre-implantation. Herein, we propose a one-step surgical technique, namely direct end-to-end anastomosis using C-shape 3D-bioprinted biomimetic trachea, for segmental trachea defect repair. First, two types of tissue-specific matrix hydrogels were exploited to provide mechanical and biological microenvironment conducive to the specific growth ways of cartilage and fibrous tissue respectively. In contrast to our previous O-shape tracheal design, the tubular structure of alternating C-shape cartilage rings and connecting vascularized-fibrous-tissue rings was meticulously designed for rapid 3D-bioprinting of tracheal constructs with optimal printing paths and models. Furthermore, in vivo trachea regeneration in nude mice showed satisfactory mechanical adaptability and efficient physiological regeneration. Finally, in situ segmental trachea reconstruction by direct end-to-end anastomosis in rabbits was successfully achieved using 3D-bioprinted C-shape biomimetic trachea. This study demonstrates the potential of advanced 3D-bioprinting for instant and efficient repair of segmental trachea defects. KeAi Publishing 2023-09-29 /pmc/articles/PMC10562117/ /pubmed/37818289 http://dx.doi.org/10.1016/j.bioactmat.2023.09.011 Text en © 2023 The Authors 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 Article
Sun, Yuyan
Huo, Yingying
Ran, Xinyue
Chen, Hongying
Pan, Qingqing
Chen, Yujie
Zhang, Ying
Ren, Wenjie
Wang, Xiaoyun
Zhou, Guangdong
Hua, Yujie
Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title_full Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title_fullStr Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title_full_unstemmed Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title_short Instant trachea reconstruction using 3D-bioprinted C-shape biomimetic trachea based on tissue-specific matrix hydrogels
title_sort instant trachea reconstruction using 3d-bioprinted c-shape biomimetic trachea based on tissue-specific matrix hydrogels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10562117/
https://www.ncbi.nlm.nih.gov/pubmed/37818289
http://dx.doi.org/10.1016/j.bioactmat.2023.09.011
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