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Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications

Polymethyl methacrylate (PMMA) bone cement (PBC) is commonly used in orthopaedic surgery. However, polymerization volumetric shrinkage, exothermic injury, and low bioactivity prevent PBC from being an ideal material. The developed expandable P(MMA-AA-St) well overcomes the volumetric shrinkage of PB...

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Detalles Bibliográficos
Autores principales: Tan, Quan-Chang, Jiang, Xia-Shu, Chen, Lei, Huang, Jin-Feng, Zhou, Qiu-Xia, Wang, Jing, Zhao, Yan, Zhang, Bo, Sun, Ya-Ni, Wei, Min, Zhao, Xiong, Yang, Zhao, Lei, Wei, Tang, Yu-Fei, Wu, Zi-Xiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9719101/
https://www.ncbi.nlm.nih.gov/pubmed/36471893
http://dx.doi.org/10.1016/j.mtbio.2022.100500
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author Tan, Quan-Chang
Jiang, Xia-Shu
Chen, Lei
Huang, Jin-Feng
Zhou, Qiu-Xia
Wang, Jing
Zhao, Yan
Zhang, Bo
Sun, Ya-Ni
Wei, Min
Zhao, Xiong
Yang, Zhao
Lei, Wei
Tang, Yu-Fei
Wu, Zi-Xiang
author_facet Tan, Quan-Chang
Jiang, Xia-Shu
Chen, Lei
Huang, Jin-Feng
Zhou, Qiu-Xia
Wang, Jing
Zhao, Yan
Zhang, Bo
Sun, Ya-Ni
Wei, Min
Zhao, Xiong
Yang, Zhao
Lei, Wei
Tang, Yu-Fei
Wu, Zi-Xiang
author_sort Tan, Quan-Chang
collection PubMed
description Polymethyl methacrylate (PMMA) bone cement (PBC) is commonly used in orthopaedic surgery. However, polymerization volumetric shrinkage, exothermic injury, and low bioactivity prevent PBC from being an ideal material. The developed expandable P(MMA-AA-St) well overcomes the volumetric shrinkage of PBC. However, its biomechanical properties are unsatisfactory. Herein, graphene oxide (GO), a hydrophilic material with favourable biomechanics and osteogenic capability, was added to P(MMA-AA-St) to optimize its biomechanics and bioactivity. The GO-modified self-expandable P(MMA-AA-St)-GO nanocomposite (PGBCs) exhibited outstanding compressive strength (>70 ​MPa), water absorption, and volume expansion, as well as a longer handling time and a reduced setting temperature. The cytocompatibility of PGBCs was superior to that of PBC, as demonstrated by CCK-8 assay, live-dead cell staining, and flow cytometry. In addition, better osteoblast attachment was observed, which could be attributed to the effects of GO. The improved level of osteogenic gene and protein expression further illustrated the improved cell-material interactions between osteoblasts and PGBCs. The results of an in vivo study performed by filling bone defects in the femoral condyles of rabbits with PGBCs demonstrated promising intraoperative handling properties and convenient implantation. Blood testing and histological staining demonstrated satisfactory in vivo biosafety. Furthermore, bone morphological and microarchitecture analyses using bone tissue staining and micro-CT scanning revealed better bone-PGBCs contact and osteogenic capability. The results of this study indicate that GO modification improved the physiochemical properties, cytocompatibility, and osteogenic capability of P(MMA-AA-St) and overcame the drawbacks of PBC, allowing its material derivatives to serve as effective implantable biomaterials.
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spelling pubmed-97191012022-12-04 Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications Tan, Quan-Chang Jiang, Xia-Shu Chen, Lei Huang, Jin-Feng Zhou, Qiu-Xia Wang, Jing Zhao, Yan Zhang, Bo Sun, Ya-Ni Wei, Min Zhao, Xiong Yang, Zhao Lei, Wei Tang, Yu-Fei Wu, Zi-Xiang Mater Today Bio Full Length Article Polymethyl methacrylate (PMMA) bone cement (PBC) is commonly used in orthopaedic surgery. However, polymerization volumetric shrinkage, exothermic injury, and low bioactivity prevent PBC from being an ideal material. The developed expandable P(MMA-AA-St) well overcomes the volumetric shrinkage of PBC. However, its biomechanical properties are unsatisfactory. Herein, graphene oxide (GO), a hydrophilic material with favourable biomechanics and osteogenic capability, was added to P(MMA-AA-St) to optimize its biomechanics and bioactivity. The GO-modified self-expandable P(MMA-AA-St)-GO nanocomposite (PGBCs) exhibited outstanding compressive strength (>70 ​MPa), water absorption, and volume expansion, as well as a longer handling time and a reduced setting temperature. The cytocompatibility of PGBCs was superior to that of PBC, as demonstrated by CCK-8 assay, live-dead cell staining, and flow cytometry. In addition, better osteoblast attachment was observed, which could be attributed to the effects of GO. The improved level of osteogenic gene and protein expression further illustrated the improved cell-material interactions between osteoblasts and PGBCs. The results of an in vivo study performed by filling bone defects in the femoral condyles of rabbits with PGBCs demonstrated promising intraoperative handling properties and convenient implantation. Blood testing and histological staining demonstrated satisfactory in vivo biosafety. Furthermore, bone morphological and microarchitecture analyses using bone tissue staining and micro-CT scanning revealed better bone-PGBCs contact and osteogenic capability. The results of this study indicate that GO modification improved the physiochemical properties, cytocompatibility, and osteogenic capability of P(MMA-AA-St) and overcame the drawbacks of PBC, allowing its material derivatives to serve as effective implantable biomaterials. Elsevier 2022-11-23 /pmc/articles/PMC9719101/ /pubmed/36471893 http://dx.doi.org/10.1016/j.mtbio.2022.100500 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
Tan, Quan-Chang
Jiang, Xia-Shu
Chen, Lei
Huang, Jin-Feng
Zhou, Qiu-Xia
Wang, Jing
Zhao, Yan
Zhang, Bo
Sun, Ya-Ni
Wei, Min
Zhao, Xiong
Yang, Zhao
Lei, Wei
Tang, Yu-Fei
Wu, Zi-Xiang
Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title_full Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title_fullStr Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title_full_unstemmed Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title_short Bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
title_sort bioactive graphene oxide-functionalized self-expandable hydrophilic and osteogenic nanocomposite for orthopaedic applications
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9719101/
https://www.ncbi.nlm.nih.gov/pubmed/36471893
http://dx.doi.org/10.1016/j.mtbio.2022.100500
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