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3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering

Appropriate biomimetic scaffolds created via 3D bioprinting are promising methods for treating damaged menisci. However, given the unique anatomical structure and complex stress environment of the meniscus, many studies have adopted various techniques to take full advantage of different materials, s...

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Detalles Bibliográficos
Autores principales: Jian, Zhou, Zhuang, Tian, Qinyu, Tian, Liqing, Peng, Kun, Li, Xujiang, Luo, Diaodiao, Wang, Zhen, Yang, Shuangpeng, Jiang, Xiang, Sui, Jingxiang, Huang, Shuyun, Liu, Libo, Hao, Peifu, Tang, Qi, Yao, Quanyi, Guo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7711190/
https://www.ncbi.nlm.nih.gov/pubmed/33313450
http://dx.doi.org/10.1016/j.bioactmat.2020.11.027
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author Jian, Zhou
Zhuang, Tian
Qinyu, Tian
Liqing, Peng
Kun, Li
Xujiang, Luo
Diaodiao, Wang
Zhen, Yang
Shuangpeng, Jiang
Xiang, Sui
Jingxiang, Huang
Shuyun, Liu
Libo, Hao
Peifu, Tang
Qi, Yao
Quanyi, Guo
author_facet Jian, Zhou
Zhuang, Tian
Qinyu, Tian
Liqing, Peng
Kun, Li
Xujiang, Luo
Diaodiao, Wang
Zhen, Yang
Shuangpeng, Jiang
Xiang, Sui
Jingxiang, Huang
Shuyun, Liu
Libo, Hao
Peifu, Tang
Qi, Yao
Quanyi, Guo
author_sort Jian, Zhou
collection PubMed
description Appropriate biomimetic scaffolds created via 3D bioprinting are promising methods for treating damaged menisci. However, given the unique anatomical structure and complex stress environment of the meniscus, many studies have adopted various techniques to take full advantage of different materials, such as the printing combined with infusion, or electrospining, to chase the biomimetic meniscus, which makes the process complicated to some extent. Some researchers have tried to tackle the challenges only by 3D biopringting, while its alternative materials and models have been constrained. In this study, based on a multilayer biomimetic strategy, we optimized the preparation of meniscus-derived bioink, gelatin methacrylate (GelMA)/meniscal extracellular matrix (MECM), to take printability and cytocompatibility into account together. Subsequently, a customized 3D bioprinting system featuring a dual nozzle + multitemperature printing was used to integrate the advantages of polycaprolactone (PCL) and meniscal fibrocartilage chondrocytes (MFCs)-laden GelMA/MECM bioink to complete the biomimetic meniscal scaffold, which had the best biomimetic features in terms of morphology and components. Furthermore, cell viability, mechanics, biodegradation and tissue formation in vivo were performed to ensure that the scaffold had sufficient feasibility and functionality, thereby providing a reliable basis for its application in tissue engineering.
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spelling pubmed-77111902020-12-11 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering Jian, Zhou Zhuang, Tian Qinyu, Tian Liqing, Peng Kun, Li Xujiang, Luo Diaodiao, Wang Zhen, Yang Shuangpeng, Jiang Xiang, Sui Jingxiang, Huang Shuyun, Liu Libo, Hao Peifu, Tang Qi, Yao Quanyi, Guo Bioact Mater Article Appropriate biomimetic scaffolds created via 3D bioprinting are promising methods for treating damaged menisci. However, given the unique anatomical structure and complex stress environment of the meniscus, many studies have adopted various techniques to take full advantage of different materials, such as the printing combined with infusion, or electrospining, to chase the biomimetic meniscus, which makes the process complicated to some extent. Some researchers have tried to tackle the challenges only by 3D biopringting, while its alternative materials and models have been constrained. In this study, based on a multilayer biomimetic strategy, we optimized the preparation of meniscus-derived bioink, gelatin methacrylate (GelMA)/meniscal extracellular matrix (MECM), to take printability and cytocompatibility into account together. Subsequently, a customized 3D bioprinting system featuring a dual nozzle + multitemperature printing was used to integrate the advantages of polycaprolactone (PCL) and meniscal fibrocartilage chondrocytes (MFCs)-laden GelMA/MECM bioink to complete the biomimetic meniscal scaffold, which had the best biomimetic features in terms of morphology and components. Furthermore, cell viability, mechanics, biodegradation and tissue formation in vivo were performed to ensure that the scaffold had sufficient feasibility and functionality, thereby providing a reliable basis for its application in tissue engineering. KeAi Publishing 2020-11-30 /pmc/articles/PMC7711190/ /pubmed/33313450 http://dx.doi.org/10.1016/j.bioactmat.2020.11.027 Text en © 2020 [The Author/The Authors] http://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
Jian, Zhou
Zhuang, Tian
Qinyu, Tian
Liqing, Peng
Kun, Li
Xujiang, Luo
Diaodiao, Wang
Zhen, Yang
Shuangpeng, Jiang
Xiang, Sui
Jingxiang, Huang
Shuyun, Liu
Libo, Hao
Peifu, Tang
Qi, Yao
Quanyi, Guo
3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title_full 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title_fullStr 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title_full_unstemmed 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title_short 3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
title_sort 3d bioprinting of a biomimetic meniscal scaffold for application in tissue engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7711190/
https://www.ncbi.nlm.nih.gov/pubmed/33313450
http://dx.doi.org/10.1016/j.bioactmat.2020.11.027
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