Cargando…

Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration

Mesoporous bioglass (MBG) with excellent osteointegration, osteoinduction, and biodegradability is a promising material for bone regeneration. However, its clinical application is hindered by complex processing and a lack of personalization, low mechanical strength, and uncontrollable degradation ra...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Changru, Ren, Ya, Kong, Weiqing, Liu, Yihao, Li, Heyue, Yang, Han, Cai, Bin, Dai, Kerong, Wang, Chengwei, Tang, Liang, Niu, Haoyi, Wang, Jinwu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Whioce Publishing Pte. Ltd. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10339414/
https://www.ncbi.nlm.nih.gov/pubmed/37457937
http://dx.doi.org/10.18063/ijb.767
_version_ 1785071840294600704
author Zhang, Changru
Ren, Ya
Kong, Weiqing
Liu, Yihao
Li, Heyue
Yang, Han
Cai, Bin
Dai, Kerong
Wang, Chengwei
Tang, Liang
Niu, Haoyi
Wang, Jinwu
author_facet Zhang, Changru
Ren, Ya
Kong, Weiqing
Liu, Yihao
Li, Heyue
Yang, Han
Cai, Bin
Dai, Kerong
Wang, Chengwei
Tang, Liang
Niu, Haoyi
Wang, Jinwu
author_sort Zhang, Changru
collection PubMed
description Mesoporous bioglass (MBG) with excellent osteointegration, osteoinduction, and biodegradability is a promising material for bone regeneration. However, its clinical application is hindered by complex processing and a lack of personalization, low mechanical strength, and uncontrollable degradation rate. In this study, we developed a double-bond-functionalized photocurable mesoporous bioglass (PMBG) sol that enabled ultrafast photopolymerization within 5 s. By further integrating nanosized tricalcium phosphate (TCP) particles through three-dimensional (3D) printing technology, we fabricated personalized and highly porous PMBG/TCP biphasic scaffolds. The mechanical properties and degradation behavior of the scaffolds were regulated by varying the amount of TCP doping. In vitro and in vivo experiments verified that PMBG/TCP scaffolds slowly released SiO(4)(4-) and Ca(2+), forming a vascularized bone regeneration microenvironment within the fully interconnected pore channels of the scaffold. This microenvironment promoted angiogenesis and accelerated bone tissue regeneration. Overall, this work demonstrates the solution to the problem of complex processing and lack of personalization in bioglass scaffolds, and the developed PMBG/TCP biphasic scaffold is an ideal material for bone regeneration applications with broad clinical prospects.
format Online
Article
Text
id pubmed-10339414
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Whioce Publishing Pte. Ltd.
record_format MEDLINE/PubMed
spelling pubmed-103394142023-07-14 Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration Zhang, Changru Ren, Ya Kong, Weiqing Liu, Yihao Li, Heyue Yang, Han Cai, Bin Dai, Kerong Wang, Chengwei Tang, Liang Niu, Haoyi Wang, Jinwu Int J Bioprint Research Article Mesoporous bioglass (MBG) with excellent osteointegration, osteoinduction, and biodegradability is a promising material for bone regeneration. However, its clinical application is hindered by complex processing and a lack of personalization, low mechanical strength, and uncontrollable degradation rate. In this study, we developed a double-bond-functionalized photocurable mesoporous bioglass (PMBG) sol that enabled ultrafast photopolymerization within 5 s. By further integrating nanosized tricalcium phosphate (TCP) particles through three-dimensional (3D) printing technology, we fabricated personalized and highly porous PMBG/TCP biphasic scaffolds. The mechanical properties and degradation behavior of the scaffolds were regulated by varying the amount of TCP doping. In vitro and in vivo experiments verified that PMBG/TCP scaffolds slowly released SiO(4)(4-) and Ca(2+), forming a vascularized bone regeneration microenvironment within the fully interconnected pore channels of the scaffold. This microenvironment promoted angiogenesis and accelerated bone tissue regeneration. Overall, this work demonstrates the solution to the problem of complex processing and lack of personalization in bioglass scaffolds, and the developed PMBG/TCP biphasic scaffold is an ideal material for bone regeneration applications with broad clinical prospects. Whioce Publishing Pte. Ltd. 2023-06-02 /pmc/articles/PMC10339414/ /pubmed/37457937 http://dx.doi.org/10.18063/ijb.767 Text en Copyright:© 2023, Zhang C, Ren Y, Kong W, et al https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License, permitting distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zhang, Changru
Ren, Ya
Kong, Weiqing
Liu, Yihao
Li, Heyue
Yang, Han
Cai, Bin
Dai, Kerong
Wang, Chengwei
Tang, Liang
Niu, Haoyi
Wang, Jinwu
Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title_full Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title_fullStr Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title_full_unstemmed Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title_short Photocurable 3D-printed PMBG/TCP biphasic scaffold mimicking vasculature for bone regeneration
title_sort photocurable 3d-printed pmbg/tcp biphasic scaffold mimicking vasculature for bone regeneration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10339414/
https://www.ncbi.nlm.nih.gov/pubmed/37457937
http://dx.doi.org/10.18063/ijb.767
work_keys_str_mv AT zhangchangru photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT renya photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT kongweiqing photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT liuyihao photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT liheyue photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT yanghan photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT caibin photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT daikerong photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT wangchengwei photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT tangliang photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT niuhaoyi photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration
AT wangjinwu photocurable3dprintedpmbgtcpbiphasicscaffoldmimickingvasculatureforboneregeneration