Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering

Regeneration of craniofacial bone defects is a key issue in the bone regeneration field. Hence, novel treatment strategies, such as tissue engineering using porous scaffolds, have been developed. An ideal tissue-engineered scaffold for bone tissue regeneration should possess pores to facilitate nutr...

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Published in:Engineered Regeneration
Main Authors: Satar Yousefiasl, Esmaeel Sharifi, Erfan Salahinejad, Pooyan Makvandi, Soussan Irani
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2023-03-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666138122000615
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author Satar Yousefiasl
Esmaeel Sharifi
Erfan Salahinejad
Pooyan Makvandi
Soussan Irani
author_facet Satar Yousefiasl
Esmaeel Sharifi
Erfan Salahinejad
Pooyan Makvandi
Soussan Irani
author_sort Satar Yousefiasl
collection DOAJ
container_title Engineered Regeneration
description Regeneration of craniofacial bone defects is a key issue in the bone regeneration field. Hence, novel treatment strategies, such as tissue engineering using porous scaffolds, have been developed. An ideal tissue-engineered scaffold for bone tissue regeneration should possess pores to facilitate nutrients transmission and support reparative tissue ingrowth, bioactivity for osteoconduction and osseointegration, and biocompatibility to improve cell attachment, proliferation, and extracellular matrix formation. In the present study, we manufactured chitosan-based hydrogels substituted with alginate with optimized properties by extrusion-based three-dimensional (3D) printing. 3D printing of the scaffolds enables the designing and developing of complex architectures for craniofacial reconstruction using computer-aided design (CAD). Different ratios (2.5, 5, and 10%) of hydroxyapatite were added to the hydrogel, printed, and subsequently lyophilized to augment the physical and biological characteristics of the scaffolds. Hydroxyapatite incorporation into the chitosan-based scaffolds increased the porosity and pore size of the printed scaffolds. In addition, the presence of hydroxyapatite amplified apatite formation and decreased the size of formed apatite crystals. All the scaffold samples showed biocompatible properties and did not have toxicity toward rat bone marrow mesenchymal stem cells. Furthermore, the scaffolds containing 5% w/w hydroxyapatite exhibited significant growth in cell viability compared to the control. Overall, it is concluded that chitosan-based scaffolds adorned with hydroxyapatite are considerable for regenerating craniofacial bone defects.
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spelling doaj-art-e97bb99d754840efb453d99032db56982025-08-19T21:36:51ZengKeAi Communications Co., Ltd.Engineered Regeneration2666-13812023-03-014111110.1016/j.engreg.2022.09.005Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineeringSatar Yousefiasl0Esmaeel Sharifi1Erfan Salahinejad2Pooyan Makvandi3Soussan Irani4School of Dentistry, Hamadan University of Medical Sciences, Hamadan 6517838736, IranDepartment of Tissue Engineering and Biomaterials, School of Advanced Medical Sciences and Technologies, Hamadan University of Medical Sciences, Hamadan, IranFaculty of Materials Science and Engineering, K. N. Toosi University of Technology, Tehran, IranCentre for Materials Interfaces, Istituto Italiano di Tecnologia, viale Rinaldo Piaggio 34, Pontedera, Pisa 56025, ItalyDental Research Centre, Oral Pathology Department, Dental Faculty, Hamadan University of Medical Sciences, Hamadan, Iran; Corresponding author.Regeneration of craniofacial bone defects is a key issue in the bone regeneration field. Hence, novel treatment strategies, such as tissue engineering using porous scaffolds, have been developed. An ideal tissue-engineered scaffold for bone tissue regeneration should possess pores to facilitate nutrients transmission and support reparative tissue ingrowth, bioactivity for osteoconduction and osseointegration, and biocompatibility to improve cell attachment, proliferation, and extracellular matrix formation. In the present study, we manufactured chitosan-based hydrogels substituted with alginate with optimized properties by extrusion-based three-dimensional (3D) printing. 3D printing of the scaffolds enables the designing and developing of complex architectures for craniofacial reconstruction using computer-aided design (CAD). Different ratios (2.5, 5, and 10%) of hydroxyapatite were added to the hydrogel, printed, and subsequently lyophilized to augment the physical and biological characteristics of the scaffolds. Hydroxyapatite incorporation into the chitosan-based scaffolds increased the porosity and pore size of the printed scaffolds. In addition, the presence of hydroxyapatite amplified apatite formation and decreased the size of formed apatite crystals. All the scaffold samples showed biocompatible properties and did not have toxicity toward rat bone marrow mesenchymal stem cells. Furthermore, the scaffolds containing 5% w/w hydroxyapatite exhibited significant growth in cell viability compared to the control. Overall, it is concluded that chitosan-based scaffolds adorned with hydroxyapatite are considerable for regenerating craniofacial bone defects.http://www.sciencedirect.com/science/article/pii/S2666138122000615BioactivityCAD/CAMMaxillofacial reconstructionPoreStem cells
spellingShingle Satar Yousefiasl
Esmaeel Sharifi
Erfan Salahinejad
Pooyan Makvandi
Soussan Irani
Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
Bioactivity
CAD/CAM
Maxillofacial reconstruction
Pore
Stem cells
title Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
title_full Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
title_fullStr Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
title_full_unstemmed Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
title_short Bioactive 3D-printed chitosan-based scaffolds for personalized craniofacial bone tissue engineering
title_sort bioactive 3d printed chitosan based scaffolds for personalized craniofacial bone tissue engineering
topic Bioactivity
CAD/CAM
Maxillofacial reconstruction
Pore
Stem cells
url http://www.sciencedirect.com/science/article/pii/S2666138122000615
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