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3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo

Calcium phosphate bio-ceramics are osteo-conductive, but it remains a challenge to promote the induction of bone augmentation and capillary formation. The surface micro/nano-topography of materials can be recognized by cells and then the cell fate are mediated. Traditional regulation methods of carv...

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Detalles Bibliográficos
Autores principales: Liu, Xiao, Miao, Yali, Liang, Haifeng, Diao, Jingjing, Hao, Lijing, Shi, Zhifeng, Zhao, Naru, Wang, Yingjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777208/
https://www.ncbi.nlm.nih.gov/pubmed/35087968
http://dx.doi.org/10.1016/j.bioactmat.2021.10.016
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author Liu, Xiao
Miao, Yali
Liang, Haifeng
Diao, Jingjing
Hao, Lijing
Shi, Zhifeng
Zhao, Naru
Wang, Yingjun
author_facet Liu, Xiao
Miao, Yali
Liang, Haifeng
Diao, Jingjing
Hao, Lijing
Shi, Zhifeng
Zhao, Naru
Wang, Yingjun
author_sort Liu, Xiao
collection PubMed
description Calcium phosphate bio-ceramics are osteo-conductive, but it remains a challenge to promote the induction of bone augmentation and capillary formation. The surface micro/nano-topography of materials can be recognized by cells and then the cell fate are mediated. Traditional regulation methods of carving surface structures on bio-ceramics employ mineral reagents and organic additives, which might introduce impurity phases and affect the biological results. In a previous study, a facile and novel method was utilized with ultrapure water as the unique reagent for hydrothermal treatment, and a uniform hydroxyapatite (HAp) surface layer was constructed on composite ceramics (β-TCP/CaSiO(3)) in situ. Further combined with 3D printing technology, biomimetic hierarchical structure scaffolds were fabricated with interconnected porous composite ceramic scaffolds as the architecture and micro/nano-rod hybrid HAp as the surface layer. The obtained HAp surface layer favoured cell adhesion, alleviated the cytotoxicity of precursor scaffolds, and upregulated the cellular differentiation of mBMSCs and gene expression of HUVECs in vitro. In vivo studies showed that capillary formation, bone augmentation and new bone matrix formation were upregulated after the HAp surface layer was obtained, and the results confirmed that the fabricated biomimetic hierarchical structure scaffold could be an effective candidate for bone regeneration.
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spelling pubmed-87772082022-01-26 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo Liu, Xiao Miao, Yali Liang, Haifeng Diao, Jingjing Hao, Lijing Shi, Zhifeng Zhao, Naru Wang, Yingjun Bioact Mater Article Calcium phosphate bio-ceramics are osteo-conductive, but it remains a challenge to promote the induction of bone augmentation and capillary formation. The surface micro/nano-topography of materials can be recognized by cells and then the cell fate are mediated. Traditional regulation methods of carving surface structures on bio-ceramics employ mineral reagents and organic additives, which might introduce impurity phases and affect the biological results. In a previous study, a facile and novel method was utilized with ultrapure water as the unique reagent for hydrothermal treatment, and a uniform hydroxyapatite (HAp) surface layer was constructed on composite ceramics (β-TCP/CaSiO(3)) in situ. Further combined with 3D printing technology, biomimetic hierarchical structure scaffolds were fabricated with interconnected porous composite ceramic scaffolds as the architecture and micro/nano-rod hybrid HAp as the surface layer. The obtained HAp surface layer favoured cell adhesion, alleviated the cytotoxicity of precursor scaffolds, and upregulated the cellular differentiation of mBMSCs and gene expression of HUVECs in vitro. In vivo studies showed that capillary formation, bone augmentation and new bone matrix formation were upregulated after the HAp surface layer was obtained, and the results confirmed that the fabricated biomimetic hierarchical structure scaffold could be an effective candidate for bone regeneration. KeAi Publishing 2021-10-22 /pmc/articles/PMC8777208/ /pubmed/35087968 http://dx.doi.org/10.1016/j.bioactmat.2021.10.016 Text en © 2021 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
Liu, Xiao
Miao, Yali
Liang, Haifeng
Diao, Jingjing
Hao, Lijing
Shi, Zhifeng
Zhao, Naru
Wang, Yingjun
3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title_full 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title_fullStr 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title_full_unstemmed 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title_short 3D-printed bioactive ceramic scaffolds with biomimetic micro/nano-HAp surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
title_sort 3d-printed bioactive ceramic scaffolds with biomimetic micro/nano-hap surfaces mediated cell fate and promoted bone augmentation of the bone–implant interface in vivo
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777208/
https://www.ncbi.nlm.nih.gov/pubmed/35087968
http://dx.doi.org/10.1016/j.bioactmat.2021.10.016
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