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3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects

Large bone defects remain an unsolved clinical challenge because of the lack of effective vascularization in newly formed bone tissue. 3D bioprinting is a fabrication technology with the potential to create vascularized bone grafts with biological activity for repairing bone defects. In this study,...

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Autores principales: Shen, Mingkui, Wang, Lulu, Gao, Yi, Feng, Li, Xu, Chuangye, Li, Sijing, Wang, Xiaohu, Wu, Yulan, Guo, Yao, Pei, Guoxian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9403505/
https://www.ncbi.nlm.nih.gov/pubmed/36033373
http://dx.doi.org/10.1016/j.mtbio.2022.100382
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author Shen, Mingkui
Wang, Lulu
Gao, Yi
Feng, Li
Xu, Chuangye
Li, Sijing
Wang, Xiaohu
Wu, Yulan
Guo, Yao
Pei, Guoxian
author_facet Shen, Mingkui
Wang, Lulu
Gao, Yi
Feng, Li
Xu, Chuangye
Li, Sijing
Wang, Xiaohu
Wu, Yulan
Guo, Yao
Pei, Guoxian
author_sort Shen, Mingkui
collection PubMed
description Large bone defects remain an unsolved clinical challenge because of the lack of effective vascularization in newly formed bone tissue. 3D bioprinting is a fabrication technology with the potential to create vascularized bone grafts with biological activity for repairing bone defects. In this study, vascular endothelial cells laden with thermosensitive bio-ink were bioprinted in situ on the inner surfaces of interconnected tubular channels of bone mesenchymal stem cell-laden 3D-bioprinted scaffolds. Endothelial cells exhibited a more uniform distribution and greater seeding efficiency throughout the channels. In vitro, the in situ bioprinted endothelial cells can form a vascular network through proliferation and migration. The in situ vascularized tissue-engineered bone also resulted in a coupling effect between angiogenesis and osteogenesis. Moreover, RNA sequencing analysis revealed that the expression of genes related to osteogenesis and angiogenesis is upregulated in biological processes. The in vivo 3D-bioprinted in situ vascularized scaffolds exhibited excellent performance in promoting new bone formation in rat calvarial critical-sized defect models. Consequently, in situ vascularized tissue-engineered bones constructed using 3D bioprinting technology have a potential of being used as bone grafts for repairing large bone defects, with a possible clinical application in the future.
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spelling pubmed-94035052022-08-26 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects Shen, Mingkui Wang, Lulu Gao, Yi Feng, Li Xu, Chuangye Li, Sijing Wang, Xiaohu Wu, Yulan Guo, Yao Pei, Guoxian Mater Today Bio Full Length Article Large bone defects remain an unsolved clinical challenge because of the lack of effective vascularization in newly formed bone tissue. 3D bioprinting is a fabrication technology with the potential to create vascularized bone grafts with biological activity for repairing bone defects. In this study, vascular endothelial cells laden with thermosensitive bio-ink were bioprinted in situ on the inner surfaces of interconnected tubular channels of bone mesenchymal stem cell-laden 3D-bioprinted scaffolds. Endothelial cells exhibited a more uniform distribution and greater seeding efficiency throughout the channels. In vitro, the in situ bioprinted endothelial cells can form a vascular network through proliferation and migration. The in situ vascularized tissue-engineered bone also resulted in a coupling effect between angiogenesis and osteogenesis. Moreover, RNA sequencing analysis revealed that the expression of genes related to osteogenesis and angiogenesis is upregulated in biological processes. The in vivo 3D-bioprinted in situ vascularized scaffolds exhibited excellent performance in promoting new bone formation in rat calvarial critical-sized defect models. Consequently, in situ vascularized tissue-engineered bones constructed using 3D bioprinting technology have a potential of being used as bone grafts for repairing large bone defects, with a possible clinical application in the future. Elsevier 2022-08-08 /pmc/articles/PMC9403505/ /pubmed/36033373 http://dx.doi.org/10.1016/j.mtbio.2022.100382 Text en © 2022 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 Full Length Article
Shen, Mingkui
Wang, Lulu
Gao, Yi
Feng, Li
Xu, Chuangye
Li, Sijing
Wang, Xiaohu
Wu, Yulan
Guo, Yao
Pei, Guoxian
3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title_full 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title_fullStr 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title_full_unstemmed 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title_short 3D bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
title_sort 3d bioprinting of in situ vascularized tissue engineered bone for repairing large segmental bone defects
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9403505/
https://www.ncbi.nlm.nih.gov/pubmed/36033373
http://dx.doi.org/10.1016/j.mtbio.2022.100382
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