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Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation

The potential translation of bio-inert polymer scaffolds as bone substitutes is limited by the lack of neovascularization upon implantation and subsequently diminished ingrowth of host bone, most likely resulted from the inability to replicate appropriate endogenous crosstalk between cells. Human um...

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Autores principales: He, Yijun, Wang, Wenhao, Lin, Shaozhang, Yang, Yixi, Song, Lizhi, Jing, Yihan, Chen, Lihao, He, Zaopeng, Li, Wei, Xiong, Ao, Yeung, Kelvin W.K., Zhao, Qi, Jiang, Yuan, Li, Zijie, Pei, Guoxian, Zhang, Zhi-Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8586756/
https://www.ncbi.nlm.nih.gov/pubmed/34820585
http://dx.doi.org/10.1016/j.bioactmat.2021.07.030
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author He, Yijun
Wang, Wenhao
Lin, Shaozhang
Yang, Yixi
Song, Lizhi
Jing, Yihan
Chen, Lihao
He, Zaopeng
Li, Wei
Xiong, Ao
Yeung, Kelvin W.K.
Zhao, Qi
Jiang, Yuan
Li, Zijie
Pei, Guoxian
Zhang, Zhi-Yong
author_facet He, Yijun
Wang, Wenhao
Lin, Shaozhang
Yang, Yixi
Song, Lizhi
Jing, Yihan
Chen, Lihao
He, Zaopeng
Li, Wei
Xiong, Ao
Yeung, Kelvin W.K.
Zhao, Qi
Jiang, Yuan
Li, Zijie
Pei, Guoxian
Zhang, Zhi-Yong
author_sort He, Yijun
collection PubMed
description The potential translation of bio-inert polymer scaffolds as bone substitutes is limited by the lack of neovascularization upon implantation and subsequently diminished ingrowth of host bone, most likely resulted from the inability to replicate appropriate endogenous crosstalk between cells. Human umbilical vein endothelial cell-derived decellularized extracellular matrix (HdECM), which contains a collection of angiocrine biomolecules, has recently been demonstrated to mediate endothelial cells(ECs) – osteoprogenitors(OPs) crosstalk. We employed the HdECM to create a PCL (polycaprolactone)/fibrin/HdECM (PFE) hybrid scaffold. We hypothesized PFE scaffold could reconstitute a bio-instructive microenvironment that reintroduces the crosstalk, resulting in vascularized bone regeneration. Following implantation in a rat femoral bone defect, the PFE scaffold demonstrated early vascular infiltration and enhanced bone regeneration by microangiography (μ-AG) and micro-computational tomography (μ-CT). Based on the immunofluorescence studies, PFE mediated the endogenous angiogenesis and osteogenesis with a substantial number of type H vessels and osteoprogenitors. In addition, superior osseointegration was observed by a direct host bone-PCL interface, which was likely attributed to the formation of type H vessels. The bio-instructive microenvironment created by our innovative PFE scaffold made possible superior osseointegration and type H vessel-related bone regeneration. It could become an alternative solution of improving the osseointegration of bone substitutes with the help of induced type H vessels, which could compensate for the inherent biological inertness of synthetic polymers.
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spelling pubmed-85867562021-11-23 Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation He, Yijun Wang, Wenhao Lin, Shaozhang Yang, Yixi Song, Lizhi Jing, Yihan Chen, Lihao He, Zaopeng Li, Wei Xiong, Ao Yeung, Kelvin W.K. Zhao, Qi Jiang, Yuan Li, Zijie Pei, Guoxian Zhang, Zhi-Yong Bioact Mater Article The potential translation of bio-inert polymer scaffolds as bone substitutes is limited by the lack of neovascularization upon implantation and subsequently diminished ingrowth of host bone, most likely resulted from the inability to replicate appropriate endogenous crosstalk between cells. Human umbilical vein endothelial cell-derived decellularized extracellular matrix (HdECM), which contains a collection of angiocrine biomolecules, has recently been demonstrated to mediate endothelial cells(ECs) – osteoprogenitors(OPs) crosstalk. We employed the HdECM to create a PCL (polycaprolactone)/fibrin/HdECM (PFE) hybrid scaffold. We hypothesized PFE scaffold could reconstitute a bio-instructive microenvironment that reintroduces the crosstalk, resulting in vascularized bone regeneration. Following implantation in a rat femoral bone defect, the PFE scaffold demonstrated early vascular infiltration and enhanced bone regeneration by microangiography (μ-AG) and micro-computational tomography (μ-CT). Based on the immunofluorescence studies, PFE mediated the endogenous angiogenesis and osteogenesis with a substantial number of type H vessels and osteoprogenitors. In addition, superior osseointegration was observed by a direct host bone-PCL interface, which was likely attributed to the formation of type H vessels. The bio-instructive microenvironment created by our innovative PFE scaffold made possible superior osseointegration and type H vessel-related bone regeneration. It could become an alternative solution of improving the osseointegration of bone substitutes with the help of induced type H vessels, which could compensate for the inherent biological inertness of synthetic polymers. KeAi Publishing 2021-08-12 /pmc/articles/PMC8586756/ /pubmed/34820585 http://dx.doi.org/10.1016/j.bioactmat.2021.07.030 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
He, Yijun
Wang, Wenhao
Lin, Shaozhang
Yang, Yixi
Song, Lizhi
Jing, Yihan
Chen, Lihao
He, Zaopeng
Li, Wei
Xiong, Ao
Yeung, Kelvin W.K.
Zhao, Qi
Jiang, Yuan
Li, Zijie
Pei, Guoxian
Zhang, Zhi-Yong
Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title_full Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title_fullStr Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title_full_unstemmed Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title_short Fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type H vessel formation
title_sort fabrication of a bio-instructive scaffold conferred with a favorable microenvironment allowing for superior implant osseointegration and accelerated in situ vascularized bone regeneration via type h vessel formation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8586756/
https://www.ncbi.nlm.nih.gov/pubmed/34820585
http://dx.doi.org/10.1016/j.bioactmat.2021.07.030
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